Semiconductor device and method for manufacturing semiconductor device

The semiconductor device addresses the complexity of forming pad structures by using face-to-face bonding and highly doped polysilicon to enhance electrical conductivity, simplifying the manufacturing process and optimizing the integration of vertical memory cell strings and peripheral circuitry.

JP2025118933APending Publication Date: 2025-08-13YANGTZE MEMORY TECH CO LTD
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Patent Information

Application Number
JP2025083310
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2025-05-19
Publication Date
2025-08-13

AI Technical Summary

Technical Problem

Existing semiconductor devices face challenges in efficiently forming pad structures without requiring through silicon contacts (TSC) from the backside, which complicates the manufacturing process.

Method used

A semiconductor device design that includes a first die with a contact structure on the front surface and a pad structure on the back surface, connected via a semiconductor structure, allowing for face-to-face bonding of two dies without the need for through silicon contacts, and using highly doped polysilicon for enhanced electrical conductivity.

Benefits of technology

Facilitates simplified manufacturing of pad structures with improved electrical coupling and reduced stress, optimizing the integration of vertical memory cell strings and peripheral circuitry without compromising performance.

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Abstract

To provide a semiconductor device and a method for fabricating the semiconductor device.SOLUTION: A semiconductor device includes a first die, and the first die includes a first contact structure formed on a front side of the first die. The semiconductor device includes a first semiconductor structure and a first pad structure which are disposed on a back side of the first die. The first semiconductor structure is conductively connected to the first contact structure from the rear side of the first die, and the first pad structure is conductively connected to the first semiconductor structure. An end of the first contact structure protrudes into the first semiconductor structure without being connected to the first pad structure. The first die and a second die can be joined to face each other.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] This application describes embodiments that relate generally to semiconductor devices. [Background technology]

[0002] Generally, semiconductor devices (e.g., semiconductor chips) communicate with the outside world through various input / output (I / O) pad structures, such as signaling pad structures and power / ground (P / G) pad structures. In some examples, a semiconductor chip may include multiple metal layers formed over circuitry on a substrate. One or more of the metal layers are used to form pad structures that are conductively coupled to the circuitry above the substrate. The pad structures may be formed to facilitate the attachment of bonding wires that can conductively couple the pad structures to external components, such as power, ground, other semiconductor chips, or metal lines on a printed circuit board (PCB). Summary of the Invention

[0003] An aspect of the present disclosure provides a semiconductor device. The semiconductor device includes a first die, the first die including a first contact structure formed on a front surface of the first die. The semiconductor device includes a first semiconductor structure disposed on a back surface of the first die and conductively connected to the first contact structure from the back surface of the first die. The semiconductor device further includes a first pad structure disposed on the back surface of the first die and conductively coupled to the first semiconductor structure.

[0004] In one embodiment, an end of the first contact structure protrudes into the first semiconductor structure without connecting to the first pad structure.

[0005] In one embodiment, the semiconductor device includes a second semiconductor structure disposed on a backside of the first die. The second semiconductor structure is conductively connected to a second contact structure from the backside of the first die. A second pad structure within the semiconductor device is disposed on the backside of the first die and conductively coupled to the second semiconductor structure. The semiconductor device further includes a first insulating structure disposed between the first pad structure and the second pad structure, electrically insulating the first pad structure from the second pad structure.

[0006] In one example, the semiconductor device further comprises a second insulating structure disposed between the first semiconductor structure and the second semiconductor structure, electrically insulating the first semiconductor structure from the second semiconductor structure.

[0007] In one embodiment, the first semiconductor structure includes a doped semiconductor material and the first pad structure includes a metallic material. In one example, the doped semiconductor material is polysilicon.

[0008] In one embodiment, the first die includes a core region including vertical memory cell strings, a staircase region for connecting to gates of memory cells in the vertical memory cell strings, and a contact region including a first contact structure, wherein the core region, the staircase region, and the contact region are electrically isolated by respective insulating structures in an insulating layer disposed on a backside of the first die.

[0009] In one example, the pad structure is disposed on the backside of the first die and is conductively connected to the vertical memory cell string in the core region via a semiconductor structure disposed between the pad structure and the vertical memory cell string.

[0010] In one example, the semiconductor device further includes a second die including peripheral circuitry for the vertical memory cell strings on a surface of the second die, the first die and the second die being bonded face-to-face.

[0011] In one example, a first contact structure on a first die is electrically coupled to input / output circuitry on a second die via a bonding structure.

[0012] Aspects of the present disclosure provide a method for manufacturing a semiconductor device, the method including: forming a first semiconductor structure on a back surface of a first die, the first semiconductor structure being conductively connected to a first contact structure from the back surface of the first die; and forming a first pad structure on the back surface of the first die, the first semiconductor structure being conductively connected to the first pad structure. The first die includes a first substrate and the first contact structure formed on a front surface of the first die.

[0013] In one embodiment, the method further includes bonding the first die and the second die face-to-face. The method includes removing the first substrate from a backside of the first die, exposing an end of a first contact structure on the backside of the first die. The end of the first contact structure protrudes into the first semiconductor structure without connecting to the first pad structure.

[0014] In one embodiment, forming a first semiconductor structure includes forming a semiconductor layer on a back surface of the first die on an edge of a first contact structure and removing a first portion of the semiconductor layer to form a semiconductor structure. A first hole is formed to separate the semiconductor structure, including the first semiconductor structure and a second semiconductor structure. Forming the first semiconductor structure further includes depositing an insulating layer on the semiconductor structure and within the first hole. The portion of the insulating layer within the first hole forms a second insulating structure. One of the second insulating structures is disposed between the first semiconductor structure and the second semiconductor structure and electrically isolates the first semiconductor structure from the second semiconductor structure. The first die is separated into a core region including vertical memory cell strings, a staircase region for connecting to gates of memory cells in the vertical memory cell strings, and a contact region including a first contact structure. The core region, the staircase region, and the contact region are electrically isolated by two second insulating structures.

[0015] Forming the first pad structures includes removing a second portion of the insulating layer to form second holes above each of the semiconductor structures and forming pad structures in the second holes above each of the semiconductor structures, the pad structures including the first pad structures being electrically isolated by the first insulating structures of the insulating layer.

[0016] In one example, forming the semiconductor layer includes depositing a doped semiconductor material that is conductive to form the semiconductor layer, and the first semiconductor structure includes the doped semiconductor material. In one example, the doped semiconductor material is polysilicon.

[0017] In one example, one of the pad structures is in the core region and is conductively connected to the vertical memory cell string in the core region via a semiconductor structure disposed between one of the pad structures and the vertical memory cell string.

[0018] In one example, the second die includes peripheral circuitry for vertical memory cell strings.

[0019] In one embodiment, bonding the first die and the second die face-to-face further includes bonding a first bonding structure on the first die with a second bonding structure on the second die, the first bonding structure conductively coupled to the first contact structure on the first die and the second bonding structure conductively coupled to the input / output circuitry on the second die.

[0020] An aspect of the present disclosure provides a memory system including a semiconductor device and a controller. The semiconductor device includes a first die, a first semiconductor structure, and a first pad structure. The first die may include a first contact structure formed on a front surface of the first die. The first semiconductor structure may be disposed on a back surface of the first die and may be conductively connected to the first contact structure from the back surface of the first die. The first pad structure may be disposed on the back surface of the first die and may be conductively coupled to the first semiconductor structure. The controller may be configured to control the operation of the semiconductor device to which the controller is connected. [Brief explanation of the drawings]

[0021] Aspects of the present disclosure are best understood from the following detailed description when read in conjunction with the accompanying drawings. It should be noted that, according to standard industry practice, various features have not been drawn to scale. In fact, the dimensions of various features may be arbitrarily increased or decreased for clarity of illustration. [Figure 1] 1 is a cross-sectional view of a semiconductor device according to some embodiments of the present disclosure. [Figure 2] 1 shows a flowchart outlining a process for forming a semiconductor device. [Figure 3] 1A-1D are cross-sectional views of a semiconductor device during a manufacturing process according to some embodiments. [Figure 4] 1A-1D are cross-sectional views of a semiconductor device during a manufacturing process according to some embodiments. [Figure 5] 1A-1D are cross-sectional views of a semiconductor device during a manufacturing process according to some embodiments. [Figure 6] 1A-1D are cross-sectional views of a semiconductor device during a manufacturing process according to some embodiments. [Figure 7] 1A-1D are cross-sectional views of a semiconductor device during a manufacturing process according to some embodiments. [Figure 8] 1A-1D are cross-sectional views of a semiconductor device during a manufacturing process according to some embodiments. [Figure 9] 1A-1D are cross-sectional views of a semiconductor device during a manufacturing process according to some embodiments. [Figure 10] 1A-1D are cross-sectional views of a semiconductor device during a manufacturing process according to some embodiments. [Figure 11] 1 illustrates a block diagram of a memory system device according to some examples of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION

[0022] The following disclosure provides many different embodiments or examples for implementing different features of the provided subject matter. To simplify the disclosure, specific examples of components and arrangements are described below. Of course, these are merely examples and are not intended to be limiting. For example, in the following description, the formation of a first feature on a second feature can include embodiments in which the first and second features are formed in direct contact with each other, and can also include embodiments in which an additional feature may be formed between the first and second features such that the first and second features are not in direct contact with each other. Furthermore, the present disclosure may repeat reference numerals and / or letters in various examples. This repetition is for simplicity and clarity and does not, in itself, dictate a relationship between the various embodiments and / or configurations described.

[0023] Additionally, spatially relative terms such as "beneath," "below," "lower," "above," and "upper" may be used herein for ease of description to describe the relationship of one element or feature to another, as shown in the figures. Spatially relative terms are intended to encompass different orientations of the device during use or operation in addition to the orientation shown in the figures. The device may be otherwise oriented (rotated 90 degrees or at other orientations) and the spatially relative descriptors used herein may be similarly interpreted accordingly.

[0024] Aspects of the present disclosure provide techniques for forming a pad structure for a semiconductor device having two dies (e.g., a first die and a second die) bonded face-to-face. In some embodiments, circuit components are formed on the front side of the two dies. The pad structure is formed on the back side of one of the two dies, such as the first die. In one example, the technique for forming the pad structure does not require forming a through silicon contact (TSC) from the back side of the first die, simplifying the process for forming the pad structure.

[0025] The first pad structure is disposed on the back surface of the first die and is conductively connected to a first contact structure formed on the front surface of the first die, where the first contact structure is connected to input / output (I / O) circuits. According to an embodiment of the present disclosure, the first pad structure is conductively coupled to the first contact structure through a first semiconductor structure disposed between the first pad structure and the first contact structure. Specifically, the first semiconductor structure is disposed on the back surface of the first die and is conductively connected to the first contact structure from the back surface of the first die. Furthermore, the first pad structure is disposed on the back surface of the first die and is conductively coupled to the first semiconductor structure. In one example, an end of the first contact structure protrudes into the first semiconductor structure without connecting to the first pad structure. In one example, the first semiconductor structure includes a highly doped semiconductor material, such as highly doped polysilicon, having a relatively high electrical conductivity. Therefore, electrical coupling between the first pad structure and the first contact structure is facilitated by the electrical conductivity of the highly doped semiconductor structure. In one example, the semiconductor structure is used to reduce stress in the semiconductor device.

[0026] In one embodiment, the second pad structure is disposed on the backside of the first die and is conductively coupled to the second contact structure via a second semiconductor structure disposed between the second pad structure and the second contact structure. According to aspects of the present disclosure, the first insulating structure is disposed between the first pad structure and the second pad structure and electrically isolates the first pad structure from the second pad structure.

[0027] In some examples, the first die includes a core region having vertical memory cell strings, and in some embodiments, a pad structure in the core region can be configured as an array common source connection for one or more vertical memory cell strings.

[0028] According to some aspects of the present disclosure, the semiconductor device may be a semiconductor memory device in which one of two dies is formed on a front surface and includes a memory cell array, such as vertical memory cell strings in the case of a three-dimensional (3D) NAND device, referred to as the array die, and the other of the two dies is formed on a front surface and includes peripheral circuitry, referred to as the peripheral die. In some examples, the peripheral circuitry is formed using complementary metal-oxide-semiconductor (CMOS) technology, and the peripheral die is also referred to as the CMOS die. The pad structure may be formed on a back surface of the array die or may be formed on a back surface of the peripheral die.

[0029] According to some aspects of the present disclosure, two dies (e.g., an array die and a peripheral die) are formed separately on two wafers. In some embodiments, a first wafer including the array die and a second wafer including the peripheral die are formed separately. For example, the first wafer can be manufactured to optimize the density and performance of the vertical memory cell strings without compromising manufacturing limitations due to the peripheral circuitry, and the second wafer can be manufactured to optimize the performance of the peripheral circuitry without compromising manufacturing limitations due to the vertical memory cell strings. In some embodiments, the first wafer and the second wafer can be bonded face-to-face using wafer-to-wafer bonding techniques, such that the array die on the first wafer is bonded to the peripheral die on the second wafer, respectively. Next, pad structures can be fabricated on the backside of one of the two wafers using techniques provided in the present disclosure.

[0030] 1 illustrates a cross-sectional view of a semiconductor device, such as semiconductor device 100, according to some embodiments of the present disclosure. Semiconductor device 100 includes two dies bonded face-to-face. A pad structure is formed on the backside of one of the two dies using the techniques provided in this disclosure. In some examples, semiconductor device 100 includes two wafers bonded face-to-face. A pad structure is formed on the backside of one of the two wafers using the techniques provided in this disclosure.

[0031] 1, semiconductor device 100 includes array die 102 and CMOS die 101 bonded face-to-face. In some embodiments, the semiconductor device may include multiple array dies and CMOS dies. Multiple array dies and CMOS dies may be stacked and bonded together. The CMOS die may be coupled to each of the multiple array dies, driving each array die in a similar manner.

[0032] The semiconductor device 100 can be any suitable device. In some examples, the semiconductor device 100 includes at least a first wafer and a second wafer bonded face-to-face. The array die 102 is disposed on the first wafer with other array dies, and the CMOS die 101 is disposed on the second wafer with other CMOS dies. The first and second wafers are bonded together, such that the array die on the first wafer is bonded to the corresponding CMOS die on the second wafer. In some examples, the semiconductor device 100 is a semiconductor chip in which at least the array die 102 and the CMOS die 101 are bonded together. In one example, the semiconductor chips are diced from the bonded wafers. In another example, the semiconductor device 100 is a semiconductor package including one or more semiconductor chips assembled on a package substrate.

[0033] The array die 102 includes regions 107-109 that are separated and electrically isolated by second insulating structures 129a of an insulating layer 129. The insulating layer 129 is disposed on the backside of the array die 102. A memory cell array may be formed in region 107. Region 107 may be referred to as a core region 107. Region 108 may be referred to as a staircase region 108 and may be used to facilitate connection to, for example, gates of memory cells in the memory cell array, gates of select transistors, etc. The gates of memory cells in the memory cell array correspond to word lines for a NAND memory architecture. Region 109 may provide space for contact structures 170. The CMOS die 101 includes a substrate 104 and peripheral circuitry formed on the substrate 104. For simplicity, the major surface (of the die or wafer) is referred to as the XY plane, and the direction perpendicular to the major surface is referred to as the Z direction.

[0034] Furthermore, in the example of FIG. 1, pad structures 121-123 are formed on the backside of one of two dies, such as array die 102, in the stack of layers.

[0035] 1, the stack of layers on the backside of array die 102 includes first etch stop layer 111, semiconductor layer 116, insulating layer 601, and insulating layer 129 stacked on the backside of array die 102. Furthermore, insulating layer 129 separates first etch stop layer 111, semiconductor layer 116, and insulating layer 601 into a portion of first etch stop layer 111, semiconductor structures 116a-116d of semiconductor layer 116, and a portion of insulating layer 601 (e.g., 601a-601d in FIG. 7). Referring to FIG. 1, second insulating structure 129a of insulating layer 129 separates first etch stop layer 111, semiconductor layer 116, and insulating layer 601. In one example, insulating layer 601 is omitted.

[0036] According to some aspects of the present disclosure, pad structures (e.g., 121-123) are formed above semiconductor structures formed using semiconductor layer 116, as shown by semiconductor structures 116a, 116c, and 116d. The pad structures may be separated and electrically isolated by insulating layer 129. Referring to FIG. 1, insulating layer 129 includes second insulating structure 129a and first insulating structures 911-914. The set of first insulating structures 911-914 separates the pad structures. For example, pad structures 121 and 123 are separated by first insulating structure 912, and pad structures 122 and 123 are separated by first insulating structure 913.

[0037] Semiconductor structures 116a-116d overlie respective portions of first etch stop layer 111. Certain pad structures (e.g., 122-123) may be in conductive connection with one or more of contact structures 170, and certain pad structures (e.g., 121) may be configured as an array common source connection for vertical memory cell strings 180 in core region 107.

[0038] According to aspects of the present disclosure, a pad structure (e.g., one of pad structures 122-123) can be disposed on the backside of the first die and can be conductively coupled to contact structure 170 via a semiconductor structure disposed between the pad structure and the contact structure. The semiconductor structure can be conductively connected to the contact structure on the backside of the first die. Furthermore, the pad structure is conductively coupled to the semiconductor structure.

[0039] 1 , the semiconductor structure 116d is disposed between the pad structure 122 and the contact structure 170. The semiconductor structure 116d conductively couples the pad structure 122 and the contact structure 170. In some examples, an end 170a of the contact structure 170 protrudes into the semiconductor structure 116d without connecting to the pad structure 122. Thus, the pad structure 122 does not directly connect to the contact structure 170. The electrical connection or coupling between the pad structure 122 and the contact structure 170 is formed using the semiconductor structure 116d.

[0040] The other pad structures (eg, 121, 123) may have similar or identical structures and materials as those described for pad structure 122, and therefore, a detailed description will be omitted for the sake of brevity.

[0041] The pad structures (e.g., 121-123) may comprise any suitable conductive material, such as a metallic material (e.g., aluminum (Al), copper (Cu), tungsten (W), etc.). In one example, the metallic material used in the pad structures (e.g., 121-123) facilitates attachment of bonding wires. The pad structures may be formed using any suitable method, such as physical vapor deposition (PVD), plating (or electroplating), etc. In one example, plating (or electroplating) is used to form Cu. In one example, the pad structures 121-123 are formed using the same process and comprise the same material.

[0042] The semiconductor structures (e.g., 116a-116d) can include any suitable semiconductor material or combination of semiconductor materials. In one example, the semiconductor structures (e.g., 116a-116d) include a doped semiconductor material. For example, the doped semiconductor material is silicon (Si), such as polysilicon. In one example, the doping level of the doped semiconductor material is relatively high, and the semiconductor structures (e.g., 116a-116d) have relatively good electrical conductivity. In one example, the sheet resistance of the semiconductor structures (e.g., 116a-116d) is less than 1000 Ω / sq. In one example, the semiconductor structures (e.g., 116a-116d) are formed by depositing highly doped Si using chemical vapor deposition (CVD). In one example, the semiconductor structures (e.g., 116a-116d) are formed using furnace CVD. In some examples, the deposition process is followed by an annealing process to recrystallize the highly doped Si and promote recrystallized grain growth. This increases the conductivity of the semiconductor structures (for example, 116a to 116d), improving the conductivity of the semiconductor structures (for example, 116a to 116d).

[0043] In general, two pad structures (e.g., 122-123) can be physically separated and electrically isolated by a first insulating structure (e.g., first insulating structure 913) in insulating layer 129. The first insulating structure (e.g., 913) can be disposed between the two pad structures (e.g., 122-123). The semiconductor structures (e.g., 116c and 116d) below each of the two pad structures (e.g., 122-123) are physically separated and electrically isolated by a second insulating structure (e.g., 129a). The second insulating structure (e.g., 129a) is disposed between the semiconductor structures (e.g., 116c and 116d).

[0044] 1, pad structure 121 is above semiconductor structure 116a. Thus, pad structure 121 is conductively connected or coupled to the source terminals of vertical memory cell strings 180 in region 107 through semiconductor structure 116a. Semiconductor structure 116a is disposed between pad structure 121 and vertical memory cell strings 180.

[0045] In some examples, the semiconductor structure 116a is coupled to the source terminals of the plurality of vertical memory cell strings 180 and can serve as an array common source (ACS) for the plurality of vertical memory cell strings 180. In some examples, the pad structure 121 is formed from one or more metal layers with relatively low resistivity. When the pad structure 121 covers a relatively large portion of the semiconductor structure 116a, the pad structure 121 can connect the ACS of a block of memory cell arrays with very little parasitic resistance. The pad structure 121 can include a portion configured as a pad structure for the ACS to receive an ACS signal from an external source. The pad structure 121 can have any suitable metal material. In one example, the pad structure 121 is formed together with the pad structures 122-123 in the same process and has the same material (e.g., Al, Cu, W, etc.) as that used in the pad structures 122-123.

[0046] Some components of the semiconductor device 100, such as passivation structures, are not shown for the sake of simplicity.

[0047] The array die 102 initially includes a substrate, which is removed prior to the formation of the semiconductor structures 116a-116d and the pad structures 121-123.

[0048] 2 is a flowchart and diagrams outlining a process 200 for forming a semiconductor device such as semiconductor device 100 according to some embodiments of the present disclosure, and FIGS. 3-10 illustrate cross-sectional views of semiconductor device 100 during processing according to some embodiments. Process 200 begins at S201 and proceeds to S210.

[0049] At S210, the first die and the second die are bonded face-to-face. The first die includes a first substrate. In one embodiment, the first die includes multiple regions (e.g., a core region, a staircase region, a contact region, etc.). The first die also includes a first transistor (e.g., a transistor in memory cell string 180) formed in the core region by processing steps operating from the front side of the first die. The first die further includes a contact structure (e.g., contact structure 170) disposed in a contact region outside the core region and the staircase region, for example. The contact structure can be formed by processing steps operating from the front side of the first die. The second die includes a second substrate with a second transistor formed on the front side of the second die.

[0050] In some embodiments, the first die is an array die, such as array die 102, and the second die is a CMOS die, such as CMOS die 101. In some examples, the first die may be a CMOS die and the second die may be an array die.

[0051] 3 shows a cross-sectional view of the semiconductor device 100 after the two die bonding process. The semiconductor device 100 comprises an array die 102 and a CMOS die 101 bonded face-to-face.

[0052] In some embodiments, array die 102 is fabricated using other array dies on a first wafer, and CMOS die 101 is fabricated using other CMOS dies on a second wafer. In some examples, the first wafer and second wafer are fabricated separately. For example, memory cell arrays and I / O contact structures are formed on the first wafer using processes operating on the front side of the first wafer. Also, first junction structures are formed on the front side of the first wafer. Similarly, peripheral circuitry is formed on the second wafer using processes operating on the front side of the second wafer, and second junction structures are formed on the front side of the second wafer.

[0053] In some embodiments, the first wafer and the second wafer can be face-to-face bonded using wafer-to-wafer bonding techniques, where first bonding structures on the first wafer are bonded to corresponding second bonding structures on the second wafer, and thus the array dies on the first wafer are bonded to the CMOS dies on the second wafer, respectively.

[0054] Referring to FIG. 3, array die 102 includes substrate 103. Regions 107-109 are formed on substrate 103. A memory cell array can be formed in core region 107, and contact structures can be formed in contact region 109. Staircase region 108 is used to facilitate connection to, for example, gates of memory cells in vertical memory cell strings, gates of select transistors, etc. CMOS die 101 includes substrate 104 and peripheral circuitry formed on substrate 104.

[0055] Substrate 103 and substrate 104 may each be any suitable substrate, such as a Si substrate, a germanium (Ge) substrate, a silicon germanium (SiGe) substrate, and / or a silicon-on-insulator (SOI) substrate. Substrate 103 and substrate 104 may each include a semiconductor material, such as a group IV semiconductor, a group III-V compound semiconductor, or a group II-VI oxide semiconductor. The group IV semiconductor may include Si, Ge, or SiGe. Substrate 103 and substrate 104 may each be a bulk wafer or an epitaxial layer. In some examples, the substrate is formed from multiple layers. For example, substrate 103 includes multiple layers, such as a bulk portion 118 and an insulating layer 114 (e.g., a silicon oxide layer), as shown in FIG. 3 .

[0056] 3, the memory cell array is formed on substrate 103 of array die 102, and the peripheral circuit is formed on substrate 104 of CMOS die 101. Array die 102 and CMOS die 101 are arranged face to face (the surface on which the circuit is arranged is called the front, and the opposite surface is called the back) and bonded to each other.

[0057] In some examples, process steps operating on the surface of array die 102 can form one or more layers on substrate 103. In one example, the one or more layers can include conductive layer 113, second etch stop layer 112, and first etch stop layer 111 formed sequentially on substrate 103. Blocks of 3D NAND memory cell strings (e.g., memory cell string 180) can be formed on substrate 103. In the example shown in FIG. 3 , the 3D NAND memory cell strings extend through conductive layer 113. In some examples, the memory cell array is formed in core region 107 as an array of vertical memory cell strings.

[0058] The staircase region 108 is used to facilitate connection to, for example, the gates of the memory cells in the vertical memory cell strings, the gates of the select transistors, etc. The gates of the memory cells in the vertical memory cell strings correspond to word lines for a NAND memory architecture. Contact structures 170 are formed in the contact region 109.

[0059] In the example of FIG. 3 , one of the vertical memory cell strings 180 is shown as a representation of an array of vertical memory cell strings formed within the core region 107. The vertical memory cell string 180 is formed within a stack of layers 190. The stack of layers 190 includes alternating gate layers 195 and insulating layers 194. The gate layers 195 and insulating layers 194 are configured to form transistors stacked one above the other. In some examples, the stack of transistors includes memory cells and select transistors, such as one or more bottom select transistors and one or more top select transistors. In some examples, the stack of transistors may include one or more dummy select transistors. The gate layer 195 corresponds to the gate of the transistor. The gate layer 195 is made of a gate stack material, such as a high-k gate insulator layer, a metal gate (MG) electrode, or the like. The insulating layer 194 is made of an insulating material, such as silicon nitride or silicon dioxide.

[0060] In one embodiment, vertical memory cell string 180 is formed from respective channel structures 181 (one of channel structures 181 is shown in FIG. 3 ) extending vertically (along the Z direction) within stack of layers 190. Channel structures 181 can be spaced apart from one another in the XY plane. In some embodiments, channel structures 181 are arranged in an array between gate line cut structures (not shown). Gate line cut structures are used to facilitate replacement of a sacrificial layer with gate layer 195 in a gate-last process. The array of channel structures 181 can have any suitable array shape, such as a matrix array shape along the X and Y directions, a zigzag array shape along the X or Y directions, or a honeycomb (e.g., hexagonal) array shape. In some embodiments, each of channel structures 181 has a circular shape in the XY plane and a pillar shape in the XZ and YZ planes. In some embodiments, the amount and arrangement of channel structures between gate line cut structures are not limited.

[0061] In some embodiments, the channel structure 181 has a pillar shape extending in a Z direction perpendicular to the major surface of the substrate 103. In one embodiment, the channel structure 181 is formed by a circular material in the XY plane and extends in the Z direction. For example, the channel structure 181 includes a semiconductor layer (also referred to as a channel layer) 185 (e.g., polysilicon) surrounded by one or more insulating layers 189. In one example, the one or more insulating layers 189 include a blocking insulating layer (e.g., silicon oxide), a charge storage layer (e.g., silicon nitride), and a tunnel insulating layer (e.g., silicon oxide) that forms an oxide-nitride-oxide (ONO) structure surrounding the channel layer 185. The channel structure 181 may further include a space 186 within the channel layer 185. The space 186 may be an air gap or may be filled with an insulating material and may be referred to as an insulating layer 186. The channel structure 181 may have a circular shape in the XY plane and extend in the Z direction. In one example, a blocking insulating layer (e.g., silicon oxide) is formed on the sidewalls of the hole (in the stack of layers 190) for channel structure 181, and then a charge storage layer (e.g., silicon nitride), a tunnel insulating layer, semiconductor layer 185, and insulating layer 186 are stacked in this order from the sidewall. Semiconductor layer 185 can be any suitable semiconductor material, such as polysilicon or single crystal silicon, and the semiconductor material may be undoped or may include p-type or n-type dopants. In some examples, the semiconductor material is undoped intrinsic silicon material. However, in some examples, due to defects, the intrinsic silicon material may be 10 10 cm -3 The insulating layer 186 may be formed of an insulating material such as silicon oxide and / or silicon nitride and / or may be formed as an air gap.

[0062] In one embodiment, the channel structure 181 and the stack of layers 190 together form the memory cell string 180. For example, the semiconductor layer 185 corresponds to the channel portion of a transistor in the memory cell string 180, and the gate layer 195 corresponds to the gate of a transistor in the memory cell string 180. Generally, a transistor has a gate that controls the channel and a drain and a source on either side of the channel. For simplicity, in the example of FIG. 3, the bottom side of the channel of the transistor in FIG. 3 is referred to as the drain, and the top side of the channel of the transistor in FIG. 3 is referred to as the source. The drain and source can be switched under a specific drive configuration. In the example of FIG. 3, the semiconductor layer 185 corresponds to the connecting channel of the transistor. In the example of FIG. 3, for a particular transistor, the drain of the particular transistor is connected to the source of the lower transistor below it, and the source of the particular transistor is connected to the drain of the upper transistor above it. This results in the transistors in the memory cell string 180 being connected in series. The terms "upper" and "lower" are used specifically in FIG. 3, where the array die 102 is positioned upside down.

[0063] Memory cell string 180 includes memory cell transistors (also referred to as memory cells). The memory cell transistors can have different threshold voltages based on carrier trapping in the portion of the charge storage layer corresponding to the floating gate of the memory cell transistor. For example, if a significant amount of holes are trapped in the floating gate of the memory cell transistor, causing the threshold voltage of the memory cell transistor to be lower than a predetermined value, the memory cell transistor is in an unprogrammed state (also referred to as an erased state), corresponding to a logic "1." When the holes are released from the floating gate, the threshold voltage of the memory cell transistor exceeds the predetermined value, causing the memory cell transistor to be in a programmed state, corresponding to a logic "0" in some instances.

[0064] In one example, memory cell string 180 includes one or more top select transistors configured to couple / decouple memory cells in memory cell string 180 to bit lines and one or more bottom select transistors configured to couple / decouple memory cells in memory cell string 180 to ACS.

[0065] The top select transistors are controlled by top select gates (TSGs). For example, when the TSG voltage (the voltage applied to the TSG) is greater than the threshold voltage of the top select transistors, the top select transistors in the memory cell string 180 are turned on and the memory cells in the memory cell string 180 are coupled to the bit lines (e.g., the drains of the string of memory cells are coupled to the bit lines), and when the TSG voltage (the voltage applied to the TSG) is less than the threshold voltage of the top select transistors, the top select transistors are turned off and the memory cells in the memory cell string 180 are decoupled from the bit lines (e.g., the drains of the string of memory cells are decoupled from the bit lines).

[0066] Similarly, the bottom select transistors are controlled by a bottom select gate (BSG). For example, when the BSG voltage (the voltage applied to the BSG) is greater than the threshold voltage of the bottom select transistors in the memory cell string 180, the bottom select transistors are turned on and the memory cells in the memory cell string 180 are coupled to the ACS (e.g., the sources of a string of memory cells in the memory cell string 180 are coupled to the ACS), and when the BSG voltage (the voltage applied to the BSG) is less than the threshold voltage of the bottom select transistors, the bottom select transistors are turned off and the memory cells are decoupled from the ACS (e.g., the sources of a string of memory cells in the memory cell string 180 are decoupled from the ACS).

[0067] 3, interconnect structures such as vias 162, metal wires 163, and junction structures 164 may be formed to electrically couple the bottom of semiconductor layer 185 to bit lines (BLs). The interconnect structures may be appropriately adapted to include additional structures, to modify one of vias 162, metal wires 163, and junction structures 164, and / or to omit one of vias 162, metal wires 163, and junction structures 164.

[0068] 3 , the staircase region 108 includes steps formed to facilitate word line (WL) connection to gates of transistors (e.g., memory cells, top select transistor(s), bottom select transistor(s), etc.). For example, a connection structure (also referred to as a word line connection structure) 150 includes a contact plug (also referred to as a word line contact plug) 151, a via structure 152, and a metal wire 153 that are conductively coupled to one another. The word line connection structure 150 can electrically couple the WL to gate terminals of transistors in the memory cell string 180. The connection structure 150 can be appropriately adapted to include additional structures, to modify one of the contact plug 151, the via structure 152, and the metal wire 153, and / or to omit one of the contact plug 151, the via structure 152, and the metal wire 153.

[0069] 3 , contact structures 170 are formed in contact regions 109. In some embodiments, contact structures 170 may be formed simultaneously with word line connection structures 150 by processing the surface of array die 102. Thus, in some examples, contact structures 170 have similar structures and / or materials as word line connection structures 150. Specifically, contact structures 170 may include contact plugs 171, via structures 172, and metal wires 173 that are conductively coupled to one another. Contact structures 170 may be appropriately adapted to include additional structures, to modify one of contact plugs 171, via structures 172, and metal wires 173, and / or to omit one of contact plugs 171, via structures 172, and metal wires 173.

[0070] In some examples, a mask including a pattern for the contact plugs 171 and the word line contact plugs 151 can be used. The mask is used to form contact holes for the contact plugs 171 and the word line contact plugs 151. An etching process can be used to form the contact holes. In one example, etching of the contact hole for the word line contact plugs 151 can stop on the gate layer 195, and etching of the contact hole for the contact plug 171 can stop in the conductive layer 113. The contact holes can then be filled with an appropriate liner layer (e.g., titanium / titanium nitride) and metal layer (e.g., tungsten) to form contact plugs, such as the contact plugs 171 and the word line contact plugs 151. The contact structure 170 can extend into the conductive layer 113 by a penetration depth. Specifically, in the example of FIG. 3 , the contact plug 171 extends into the conductive layer 113 through the first etch stop layer 111 and the second etch stop layer 112. Additional back-end-of-line (BEOL) processes can be used to form various interconnect structures such as via structures, metal wires, and bond structures.

[0071] 3, junction structures are formed on the surfaces of the array die 102 and the CMOS die 101. For example, junction structures 154, 164, and 174 of the word line connection structure 150, the memory cell string 180, and the contact structure 170 are formed on the surface side of the array die 102, and junction structures 131, 132, and 134 corresponding to the junction structures 164, 154, and 174 are formed on the surface of the CMOS die 101. Metal layers 191 to 193 can be formed in the CMOS die 101 and can be connected to the corresponding junction structures 131, 132, and 134, respectively.

[0072] 3, array die 102 and CMOS die 101 are positioned face-to-face (circuit side up, substrate side down) and bonded together. Corresponding bonding structures on array die 102 and CMOS die 101 are aligned and bonded together to form a bonding interface that conductively couples appropriate components on the two dies. For example, bonding structure 164 and bonding structure 131 are bonded to connect the drain side of memory cell string 180 to a bit line (BL). In another example, bonding structure 174 and bonding structure 134 are bonded together to couple contact structure 170 on array die 102 to I / O circuitry on CMOS die 101.

[0073] 2 , in S212, the first substrate of the first die is removed from the backside of the first die. Removing the first substrate exposes memory cell strings 180 and contact structures 170 on the backside of the first die. For example, removing the first substrate exposes ends 170a of contact structures 170.

[0074] 4 shows a cross-sectional view of semiconductor device 100 after removing first substrate 103 from array die 102. In the example of FIG. 4, bulk portion 118 and insulating layer 114 have been removed from the backside of array die 102. Additionally, conductive layer 113 and second etch stop layer 112 have been removed from the backside of array die 102.

[0075] In some examples, after a wafer-to-wafer bonding process, the first wafer containing the array die is bonded to a second wafer containing the CMOS die. Then, the first substrate is thinned from the backside of the first wafer. In one example, a chemical-mechanical polishing (CMP) process or a grinding process is used to remove most of the bulk portion 118 of the first wafer. Furthermore, an appropriate etching process can be used to remove the remaining bulk portion 118, insulating layer 114, conductive layer 113, and second etch-stop layer 112 from the backside of the first wafer. Removal of the bulk portion 118, insulating layer 114, conductive layer 113, and second etch-stop layer 112 can expose the end 170a of the contact structure 170 that protrudes into the contact region 109. Removal of the bulk portion 118, insulating layer 114, conductive layer 113, and second etch-stop layer 112 can also expose the end of the memory cell string 180 in the core region 107.

[0076] Referring again to FIG. 2, steps S214, S216, S218, and S220 can be used to form semiconductor structures (e.g., 116a-116d) and pad structures (e.g., 121-123) on the backside of the first die (e.g., array die 102), and will be described with reference to FIGS. 5-10.

[0077] 2 and 5-7, steps S214 and S216 can be used to form semiconductor structures (e.g., 116a-116d). In S214, a semiconductor layer (e.g., 116 in FIG. 5) used in forming the semiconductor structure is formed on the backside of the first die. Any suitable process, such as CVD, furnace CVD, etc., can be used to form the semiconductor layer. According to aspects of the present disclosure, the semiconductor layer includes a highly doped semiconductor material and can be annealed to further enhance the conductivity of the semiconductor material. The annealing process can promote recrystallization of the semiconductor material and further growth of crystal grains, resulting in a semiconductor layer with good conductivity. Referring to FIG. 5, in one example, a semiconductor layer 116 is deposited on the backside of the array die 102 and overlies the first etch stop layer 111. The semiconductor layer 116 also overlies the exposed memory cell strings 180 and contact structures 170. In one example, the semiconductor layer 116 is disposed on the end 170a of the contact structure 170. The semiconductor layer 116 includes highly doped Si (e.g., polysilicon), which can be annealed to recrystallize and have good electrical conductivity.

[0078] As shown in FIGS. 2, 6, and 7, in S216, semiconductor structures (e.g., 116a-116d) may be formed from a semiconductor layer (e.g., 116) on the backside of a first die. Referring to FIG. 6, an insulating layer 601 (also referred to as a hard mask layer) and a photoresist layer 602 are formed on the semiconductor layer 116 on the backside of the first die (e.g., array die 102). The hard mask layer 601 may include one or more insulating materials, such as silicon oxide, silicon nitride, etc. The hard mask layer 601 may include one or more sublayers. In one example, the hard mask layer 601 includes silicon oxide.

[0079] Referring to FIG. 7, on the backside of a first die (e.g., array die 102), a photolithography process is used to define a pattern for second insulating structures 129a of insulating layer 129 in photoresist layer 602 according to a mask. An etching process is used to form first holes 701-704 by removing portions of hard mask layer 601, semiconductor layer 116, and first etch stop layer 111. The removed portions of semiconductor layer 116 are referred to as first portions of semiconductor layer 116. Semiconductor structures 116a-116d are formed by removing the first portions of semiconductor layer 116, and first holes 701-704 separate semiconductor structures 116a-116d.

[0080] In one example, the etching process includes a dry etching process. In one example, the etching process etches the backside of the first die down to the stack of layers 190, including the gate layer 195 and the insulating layer 194. In one example, the stack of layers 190 is left intact or minimally affected. Subsequently, the photoresist layer 602 is removed. In one example, as shown in FIG. 7, the hard mask layer 601 is not removed. Alternatively, some or all of the hard mask layer 601 can be removed.

[0081] 2 and 8 , in S218, an insulating layer (e.g., insulating layer 129) is formed on the hard mask layer 601 on the backside of the first die (e.g., array die 102). Furthermore, the insulating layer 129 is deposited in the first holes 701-704 to fill the first holes 701-704, and second insulating structures 129a are formed in the first holes 701-704. This forms a composite insulating layer 801 including the insulating layer 129 and the hard mask layer 601 on the semiconductor layer 116. In one example, the hard mask layer 601 is removed before forming the insulating layer 129, so that the insulating layer 129 is formed on the semiconductor layer 116 and in the first holes 701-704.

[0082] Referring to FIG. 8, the array die 102 is separated into regions 107-109 by two of the second insulating structures 129a. Specifically, regions 107-108 are separated by the second insulating structure 129a in the first holes 701, and regions 108-109 are separated by the second insulating structure 129a in the first holes 702. The semiconductor layer 116 is separated into semiconductor structures 116a-116d by the second insulating structure 129a. Two semiconductor structures (e.g., 116c and 116d) may be separated and electrically isolated by the second insulating structure (e.g., 129a). The hard mask layer 601 is separated into portions 601a-601d by the second insulating structure 129a.

[0083] 1, 2, 9, and 10, in S220, pad structures (eg, 121-123 in semiconductor device 100) are formed on the backside of a first die (eg, array die 102).

[0084] 9, a photoresist layer 902 is formed on the insulating layer 129. Subsequently, a photolithography process is used to define a pattern of pad structures (e.g., 121-123) in the photoresist layer 902 according to a mask. An etching process is used to remove second portions of the insulating layer 129 and corresponding portions of the hard mask layer 601, thereby forming second holes 901-903 above each semiconductor structure. In one example, the etching process further etches the semiconductor layer 116 to remove the upper portions of each of the semiconductor structures 116a-116d. In one example, the etching process includes a dry etching process.

[0085] 1 and 10, a pad structure is formed on the backside of a first die (e.g., array die 102). In one example, photoresist layer 902 is removed. Then, metal layer 1001 is formed by depositing a metal material on the backside of array die 102 using any suitable method, such as PVD. In one example, metal layer (e.g., Cu layer) 1001 is electroplated on the backside of the first die. Metal layer 1001 fills second holes 901-903.

[0086] 1, portions of the metal layer 1001 on the insulating layer 129 can be removed, for example, by an etching process, CMP, etc. The portions of the metal layer 1001 in the second holes 901-903 form pad structures (e.g., 121-123). The pad structures (e.g., 121-123) are separated and electrically isolated by the first insulating structures 911-914 of the insulating layer 129.

[0087] The metal layer 1001 can include one or more materials, such as metallic materials Al, Cu, W, etc. The metal layer 1001 can include one or more layers. In some embodiments, an interface layer can be formed between the metallic material (e.g., Al) and the semiconductor layer 116. In some examples, a metal silicide thin film can be used as the interface layer. In one example, a metal silicide thin film can be used to enable ohmic contact between Al and the semiconductor layer 116. In another example, a metal silicide thin film is used as a diffusion barrier to prevent diffusion of aluminum into the semiconductor layer 116.

[0088] Once metal layer 1001 is formed on semiconductor layer 116, pad structures (e.g., 121-123) are formed on each semiconductor structure (e.g., 116a, 116c, and 116d). Thus, in some examples, contamination of channel structure 181 from the formation of metal layer 1001 is reduced or eliminated. In one example, stress within the semiconductor device is reduced by using a semiconductor material such as polysilicon in the semiconductor structures (e.g., 116a, 116c, and 116d) to facilitate connections between the pad structures and the respective contact structures.

[0089] This disclosure shows one pad structure (e.g., 121) in core region 107. Generally, one or more pad structures can be formed in core region 107 using the processes described in this disclosure.

[0090] The semiconductor device may include a first wafer and a second wafer bonded together. In one example, the first wafer includes a first die (e.g., array die 102) and the second wafer includes a second die (e.g., CMOS die 101). The process 200 shown in Figures 1-10 is suitable for a semiconductor device in which the first and second wafers are bonded together. For example, the substrate of one of the first and second wafers (e.g., the first wafer) is removed in a manner similar to that described with reference to Figures 2-4. A semiconductor structure is formed on the backside of the first wafer as described with reference to Figures 2 and 5-8. A pad structure is then formed on the backside of the first wafer as described with reference to Figures 2 and 9-10.

[0091] In one example, after forming a pad structure on the first wafer, the bonded first and second wafers can be diced to form dies, one of which can include the first die and the second die.

[0092] The wafer fabrication process can continue with further processes such as passivation, testing, dicing, etc.

[0093] 11 shows a block diagram of a memory system device (or memory system) 1100 according to some examples of the present disclosure. The memory system device 1100 includes one or more semiconductor devices, as shown by semiconductor devices 1111-1114, each configured similarly to the semiconductor device 100. In some examples, the semiconductor device 100 and the semiconductor devices 1111-1114 are semiconductor memory devices. In some examples, the memory system device 1100 is a solid-state drive (SSD).

[0094] The memory system device 1100 may include other suitable components. In one example, the memory system device 1100 includes a controller or master controller 1102. For example, the memory system device 1100 may include an interface 1101 and a controller coupled to each other as shown in FIG. 11 . The memory system device 1100 may include a bus 1120 coupling the master controller 1102 to the semiconductor devices 1111-1114. Furthermore, the master controller 1102 is connected to the semiconductor devices 1111-1114, respectively, as indicated by respective control lines 1121-1124.

[0095] The interface 1101 is mechanically and electrically configured appropriately for connecting between the memory system device 1100 and a host device, and can be used to transfer data between the memory system device 1100 and the host device.

[0096] The master controller 1102 is configured to connect each of the semiconductor devices 1111-1114 to the interface 1101 for data transfer. For example, the master controller 1102 is configured to provide enable / disable signals to the semiconductor devices 1111-1114, respectively, to activate one or more of the semiconductor devices 1111-1114 for data transfer.

[0097] The master controller 1102 is responsible for completing various operations within the memory system device 1100. For example, the master controller 1102 may perform bad block management, error checking and correction, garbage collection, and the like.

[0098] In some embodiments, the master controller 1102 is implemented using a processor chip. In some examples, the master controller 1102 is implemented using multiple microcontroller units (MCUs).

[0099] The foregoing outlines features of some embodiments so that those skilled in the art may better understand aspects of the present disclosure. Those skilled in the art will appreciate that they may readily use this disclosure as a basis for designing or modifying other processes and structures which carry out the same purposes and / or achieve the same advantages as the embodiments introduced herein. Those skilled in the art should also appreciate that such equivalent constructions do not depart from the spirit and scope of the present disclosure, and that various changes, substitutions, and alterations can be made herein without departing from the spirit and scope of the present disclosure.

Claims

1. A semiconductor device comprising: a first die having a first contact structure formed on a surface of the first die; a first semiconductor structure disposed on a backside of the first die and conductively connected to the first contact structure from the backside of the first die; a first pad structure disposed on the backside of the first die and conductively coupled to the first semiconductor structure; A semiconductor device comprising:

2. The semiconductor device of claim 1 , wherein an end of the first contact structure protrudes into the first semiconductor structure without connecting to the first pad structure.

3. a second semiconductor structure disposed on a backside of the first die and conductively connected to a second contact structure from the backside of the first die; a second pad structure disposed on the backside of the first die and conductively coupled to the second semiconductor structure; 2. The semiconductor device of claim 1, further comprising: a first insulating structure disposed between the first pad structure and the second pad structure, electrically insulating the first pad structure from the second pad structure.

4. 4. The semiconductor device of claim 3, further comprising a second insulating structure disposed between the first semiconductor structure and the second semiconductor structure, electrically insulating the first semiconductor structure from the second semiconductor structure.

5. The semiconductor device of claim 1 , wherein the first semiconductor structure comprises a doped semiconductor material and the first pad structure comprises a metallic material.

6. 6. The semiconductor device of claim 5, wherein the doped semiconductor material is polysilicon.

7. 2. The semiconductor device of claim 1, wherein the first die includes a core region including vertical memory cell strings, a staircase region for connecting to gates of memory cells in the vertical memory cell strings, and a contact region including the first contact structure, the core region, the staircase region, and the contact region being electrically isolated by respective insulating structures of an insulating layer disposed on the back surface of the first die.

8. 8. The semiconductor device of claim 7, further comprising: a pad structure disposed on the backside of the first die and conductively connected to the vertical memory cell string in the core region through a semiconductor structure disposed between the pad structure and the vertical memory cell string.

9. 8. The semiconductor device of claim 7, further comprising a second die comprising peripheral circuitry for the vertical memory cell strings on a surface of the second die, the first die and the second die being bonded face-to-face.

10. 10. The semiconductor device of claim 9, wherein the first contact structure on the first die is electrically coupled to input / output circuitry on the second die through a bonding structure.

11. 1. A method for manufacturing a semiconductor device, comprising: forming a first semiconductor structure on a back surface of a first die, the first semiconductor structure being in conductive connection with a first contact structure from the back surface of the first die, the first die comprising a first substrate and the first contact structure formed on a front surface of the first die; and forming a first pad structure on the back surface of the first die in conductive connection with the first semiconductor structure.

12. bonding the first die and the second die face to face; 12. The method of claim 11, further comprising removing the first substrate from the back surface of the first die, wherein ends of the first contact structures on the back surface of the first die are exposed and protrude into the first semiconductor structure without connecting to the first pad structures.

13. forming the first semiconductor structure includes: forming a semiconductor layer on the backside of the first die and on the end of the first contact structure; forming a semiconductor structure by removing a first portion of the semiconductor layer, a first hole formed to separate the semiconductor structure including the first semiconductor structure and a second semiconductor structure; depositing an insulating layer over the semiconductor structures and within the first holes, wherein a portion of the insulating layer within the first holes forms second insulating structures, one of the second insulating structures being disposed between the first semiconductor structure and the second semiconductor structure and electrically insulating the first semiconductor structure and the second semiconductor structure; 13. The method of claim 12, wherein the first die is separated into a core region including vertical memory cell strings, a staircase region for connecting to gates of memory cells in the vertical memory cell strings, and a contact region including the first contact structure, and the core region, the staircase region, and the contact region are electrically isolated by two of the second isolation structures.

14. forming the first pad structure includes: removing a second portion of the insulating layer to form a second hole above each of the semiconductor structures; 14. The method of claim 13, further comprising: forming a pad structure in the second hole above each of the semiconductor structures, the pad structure being electrically isolated by a first insulating structure of the insulating layer, the pad structure including the first pad structure.

15. 14. The method of claim 13, wherein forming the semiconductor layer comprises depositing a doped semiconductor material that is conductive to form the semiconductor layer, and the first semiconductor structure comprises the doped semiconductor material.

16. 16. The method of claim 15, wherein the doped semiconductor material is polysilicon.

17. 15. The method of claim 14, wherein one of the pad structures is in the core region and is conductively connected to the vertical memory cell string in the core region via a semiconductor structure disposed between the one of the pad structures and the vertical memory cell string.

18. 14. The method of claim 13, wherein the second die comprises peripheral circuitry for the vertical memory cell strings.

19. Bonding the first die and the second die face to face includes:

13. The method of claim 12, further comprising: bonding a first bonding structure on the first die with a second bonding structure on the second die, the first bonding structure being conductively coupled with the first contact structure on the first die and the second bonding structure being conductively coupled with input / output circuitry on the second die.

20. 1. A memory system comprising: A semiconductor device comprising: a first die having a first contact structure formed on a surface of the first die; a first semiconductor structure disposed on a backside of the first die and conductively connected to the first contact structure from the backside of the first die; a semiconductor device including: a first pad structure disposed on the backside of the first die and conductively coupled to the first semiconductor structure; a controller configured to control operation of the semiconductor device, the controller being coupled to the semiconductor device; and A memory system comprising:

Citation Information

Patent Citations

  • Three-dimensional memory device having back-side source contact

    CN111566815A

  • Three-dimensional memory device

    CN112424934A

  • Semiconductor device

    JP2020102613A

  • Bonded three-dimensional memory devices and methods of making the same by replacing carrier substrate with source layer

    US20210035965A1

  • Semiconductor device

    US20210202458A1