Semiconductor device and its manufacturing method
The semiconductor device with a vertical Hall element and increasing impurity concentration diffusion layer and multiple electrodes addresses sensitivity issues by stabilizing current paths, improving magnetic field detection.
Patent Information
- Application Number
- JP2021119221
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-07-20
- Publication Date
- 2025-05-20
- Estimated Expiration
- 2041-07-20
AI Technical Summary
Existing vertical Hall elements face challenges in improving sensitivity due to the spread of current paths, which reduces their effectiveness in detecting magnetic fields parallel to the substrate.
A semiconductor device with a vertical Hall element featuring an impurity diffusion layer with increasing impurity concentration depth and multiple electrodes in a straight line, designed to maintain a consistent resistance value and widen the current path, enhancing sensitivity.
The design allows for improved sensitivity in detecting magnetic fields parallel to the substrate by maintaining a stable current path and reducing offset voltage, thereby enhancing magnetic field detection capabilities.
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Abstract
Description
[Technical field]
[0001] The present invention relates to a semiconductor device and a manufacturing method thereof. [Background technology]
[0002] Hall elements are used in a variety of applications because they can be easily formed on the surface of a semiconductor substrate (hereinafter sometimes simply referred to as "substrate") and can detect position and angle without contact as a magnetic sensor. Among them, magnetic sensors using horizontal Hall elements that detect magnetic field components perpendicular to the surface of the substrate are generally well known, but various magnetic sensors using vertical Hall elements that detect magnetic field components parallel to the surface of the substrate have also been proposed.
[0003] An example of a vertical Hall element is one that detects the magnetic field by outputting a Hall voltage generated by the Hall effect when a magnetic field component parallel to the substrate is applied to a drive current (hereinafter, the drive current may be simply referred to as "current") flowing in a direction perpendicular to the substrate. A vertical Hall element with good sensitivity has been proposed in which a pair of output electrodes that output the Hall voltage are arranged on the surface of the substrate at positions that sandwich the current.
[0004] For example, Patent Document 1 (particularly, see FIG. 3 of Patent Document 1) proposes a vertical Hall element in which an electrode made of an N-type diffusion layer and an electrode separation diffusion layer (P-well) that separates adjacent electrodes are provided in a magnetic sensing part (N-well) formed on a P-type substrate, and the impurity concentration in the magnetic sensing part has a concentration distribution in which the concentration is highest at the substrate surface and gradually decreases as the depth increases from the substrate surface. In this vertical Hall element, the width of the depletion layer formed and the width of the electrode separation diffusion layer that narrows as the depth increases from the substrate surface complement each other, suppressing the spread of current in the magnetic sensing part and relatively increasing the current component flowing in a direction perpendicular to the substrate, thereby improving sensitivity. [Prior art documents] [Patent documents]
[0005] [Patent Document 1] JP 2005-333103 A Summary of the Invention [Problem to be solved by the invention]
[0006] An object of one aspect of the present invention is to provide a semiconductor device having a vertical Hall element capable of improving sensitivity. [Means for solving the problem]
[0007] The semiconductor device according to an embodiment of the present invention comprises: a semiconductor substrate of a first conductivity type; a vertical Hall element provided on the semiconductor substrate; having The vertical Hall element is a second conductivity type impurity diffusion layer provided on the semiconductor substrate, the impurity concentration of which increases with depth; three or more electrodes provided in a straight line on a surface of the impurity diffusion layer and made of a second conductivity type impurity region having a higher concentration than the impurity diffusion layer; Equipped with. Effect of the Invention
[0008] According to one aspect of the present invention, it is possible to provide a semiconductor device having a vertical Hall element capable of improving sensitivity. [Brief description of the drawings]
[0009] [Figure 1] 1 is a schematic diagram showing a semiconductor device having a vertical Hall element according to a first embodiment of the present invention, in which (a) is a schematic plan view of the vertical Hall element, and (b) is a schematic cross-sectional view taken along line II in (a). [Diagram 2] FIG. 2 is an explanatory diagram showing the operation principle of the vertical Hall element of the first embodiment. [Diagram 3]FIG. 3 is a schematic plan view showing a vertical Hall element which is a modification of the first embodiment. [Figure 4] FIG. 4 is a schematic plan view illustrating the operating principle of the vertical Hall element according to the second embodiment. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0010] A semiconductor device according to an embodiment of the present invention includes a semiconductor substrate of a first conductivity type and a vertical Hall element provided on the semiconductor substrate. The vertical Hall element includes an impurity diffusion layer of a second conductivity type, the impurity concentration of which increases with depth, and three or more electrodes, each of which is formed in a straight line on the surface of the impurity diffusion layer and is made of an impurity region of the second conductivity type having a higher concentration than the impurity diffusion layer.
[0011] This vertical Hall element has a different structure and operating principle from the vertical Hall element described in Patent Document 1, which detects a Hall voltage generated in response to a drive current (hereinafter, the drive current may be simply referred to as "current") flowing in a direction perpendicular to the substrate, and detects a Hall voltage generated in response to a current flowing in a direction parallel to the substrate. Specifically, this vertical Hall element generates a potential difference between two electrodes sandwiching at least one of three or more electrodes arranged in a straight line on the surface of an impurity diffusion layer, and causes a current to flow. When a magnetic field is applied to the charged particles of the current flowing in a direction parallel to the substrate from a direction parallel to the substrate and perpendicular to the direction of the current flow, this vertical Hall element can output a Hall voltage from the electrode sandwiched between the two electrodes. In such a vertical Hall element, if the resistivity of the current path between the two electrodes is constant, the resistance value in the path increases as the path becomes longer, making it difficult for the current path to spread in the depth direction. Then, the surface of the current flowing in a direction parallel to the substrate becomes narrower, making it difficult to obtain the Hall effect and reducing sensitivity.
[0012] Therefore, in the vertical Hall element of this embodiment, the impurity concentration increases as the impurity diffusion layer, which serves as the current path, becomes deeper. As a result, even if the current path becomes deeper, the resistance value of the path does not increase, so the current path spreads in the depth direction and the surface through which the current flows in the direction parallel to the substrate becomes wider, making it easier to receive a magnetic field, thereby improving sensitivity.
[0013] Hereinafter, an embodiment of the present invention will be described in detail with reference to the drawings. In the drawings, the same components are denoted by the same reference numerals, and duplicated explanations may be omitted. In the drawings, the X, Y, and Z directions are perpendicular to each other. The direction including the X direction and the opposite direction of the X direction (-X direction) is called the "X-axis direction", the direction including the Y direction and the opposite direction of the Y direction (-Y direction) is called the "Y-axis direction", and the direction including the Z direction and the opposite direction of the Z direction (-Z direction, depth direction) is called the "Z-axis direction" (height direction, thickness direction). In this regard, in the following embodiments, the surface of each film on the Z direction side may be called the "surface". The drawings are schematic, and the ratios of width, length, depth, etc. are not as shown in the drawings.
[0014] (First embodiment) 1 is a schematic diagram showing a semiconductor device having a vertical Hall element according to a first embodiment of the present invention, in which (a) is a schematic plan view of the vertical Hall element, and (b) is a schematic cross-sectional view taken along line II in (a).
[0015] 1, the semiconductor device of this embodiment includes a semiconductor substrate 10, a vertical Hall element 100 provided on the semiconductor substrate 10, and an element isolation diffusion layer 50 provided so as to surround the periphery of the vertical Hall element 100. The vertical Hall element 100 also includes an impurity diffusion layer 20, electrodes 31 to 35, and an insulating film 40.
[0016] The semiconductor substrate 10 is a silicon wafer doped with a P-type impurity which is a first conductivity type.
[0017] The impurity concentration of the semiconductor substrate 10 is not particularly limited and can be appropriately selected depending on the purpose. From the viewpoint of suppressing the spread of the depletion layer to the impurity diffusion layer 20, it is preferable that the impurity concentration be lower than the impurity concentration at the interface between the impurity diffusion layer 20 and the semiconductor substrate 10. If this range can be satisfied, it is preferable to set the impurity concentration at a level lower than 5×10 14 atoms / cm 3 5×10 or more 15 atoms / cm 3 The following ranges are preferred: The thickness of the semiconductor substrate 10 is not particularly limited and can be appropriately selected depending on the purpose. From the viewpoint of reducing the stress applied to the vertical Hall element 100 provided on the surface, the thickness is preferably 100 μm or more, and from the viewpoint of reducing the height of the product, the thickness is preferably 400 μm or less.
[0018] The impurity diffusion layer 20, which is a magnetic sensing portion, is provided on the semiconductor substrate 10, and an N-type impurity, which is a second conductivity type, is injected and diffused therein.
[0019] The impurity concentration of the impurity diffusion layer 20 increases with depth, and has a peak concentration. That is, the resistivity of the impurity diffusion layer 20 decreases with depth up to the depth at which the peak concentration is reached (hereinafter, this may be referred to as the "peak concentration depth", where "depth" refers to the depth from the surface of the impurity diffusion layer 20), and increases with depth beyond the peak concentration depth. For this reason, the current path is likely to spread up to the peak concentration depth, but is unlikely to spread beyond the peak concentration depth.
[0020] From these, it is possible to widen the current path in a balanced manner by adjusting the peak concentration depth of the impurity concentration of the impurity diffusion layer 20 and setting an impurity concentration gradient such that the resistance value of the deepest current path is approximately the same as the resistance value of the current path passing through a location shallower than the peak concentration depth.
[0021] The peak concentration of the impurity diffusion layer 20 is not particularly limited and can be appropriately selected depending on the purpose. However, it is preferable to widen the current path in a well-balanced manner. Specifically, it is preferable to set the peak concentration to 1×1016 atoms / cm 3 More than 1×10 17 atoms / cm 3 The following ranges are preferred: The impurity concentration at the interface between the impurity diffusion layer 20 and the semiconductor substrate 10 is preferably in the range of not less than the impurity concentration of the semiconductor substrate 10 and not more than the peak concentration of the impurity diffusion layer 20 from the viewpoint of suppressing the spread of the depletion layer into the impurity diffusion layer 20. If this range can be satisfied, it is preferably 5×10 15 atoms / cm 3 More than 1×10 17 atoms / cm 3 The following ranges are preferred:
[0022] The thickness of the impurity diffusion layer 20 is not particularly limited and can be appropriately selected depending on the purpose, but is preferably in the range of 3 μm to 15 μm.
[0023] The five electrodes 31 to 35 are provided in a straight line on the surface of the impurity diffusion layer 20, and are made of N-type impurity regions having a higher concentration than the impurity diffusion layer 20. The impurity concentration of the electrodes 31 to 35 is not particularly limited and can be appropriately selected depending on the purpose. From the viewpoint of conductivity, however, it is preferable that the impurity concentration is 1×10 19 atoms / cm 3 The above is preferred.
[0024] The electrodes 31 to 35 can be either drive current supply electrodes or Hall voltage output electrodes, and when performing an operation of detecting a magnetic field in this embodiment, the electrodes 31, 33, and 35 become drive current supply electrodes, and the electrodes 32 and 34 become Hall voltage output electrodes. In addition, in order to obtain output voltages Vout1 to 4 required for removing an offset voltage in a spinning current method described later, the drive current supply electrodes and the Hall voltage output electrodes may be interchanged.
[0025] The insulating film 40 is provided on the surface of the impurity diffusion layer 20 around the electrodes 31 to . The insulating film 40 is preferably one having no conductivity type, since a depletion layer would be generated near the surface if the insulating film 40 had a conductivity type such as a P-type electrode isolation diffusion layer. The insulating film 40 in this embodiment is a silicon oxide film formed by the LOCOS method.
[0026] The P-type element isolation diffusion layer 50 surrounds the vertical Hall element 100 so as to cover the side surfaces of the impurity diffusion layer 20, and is formed deeper than the impurity diffusion layer 20. This electrically isolates the vertical Hall element 100 from other regions (not shown) on the semiconductor substrate 10 around it.
[0027] In another region (not shown) on the semiconductor substrate 10 electrically isolated from the vertical Hall element 100 by the element isolation diffusion layer 50, elements such as transistors constituting at least one of a circuit for processing an output signal from the vertical Hall element 100 and a circuit for supplying a signal to the vertical Hall element 100 are provided.
[0028] Next, a method for manufacturing the vertical Hall element of the first embodiment will be described.
[0029] First, an N-type impurity is injected from the surface of the semiconductor substrate 10, and then an epitaxial layer with a constant impurity concentration is deposited on the surface of the semiconductor substrate 10 by adding the N-type impurity. At this time, the peak concentration of the impurity injected from the surface of the semiconductor substrate 10 is set to be higher than the impurity concentration of the epitaxial layer. The implantation of impurities from the surface of the semiconductor substrate 10 may be performed using a high-energy ion implanter capable of increasing the impurity concentration by implanting with an energy of about 3 KeV to 3 MeV.
[0030] Next, the impurities implanted into the surface of the semiconductor substrate 10 are diffused into both the semiconductor substrate 10 and the epitaxial layer to form an impurity diffusion layer 20 . Then, using an insulating film 40 formed on the surface of the impurity diffusion layer 20 by a local oxidation of silicon (LOCOS) method as a mask, N-type impurities are injected into the surface of the impurity diffusion layer 20 to a high concentration, thereby forming electrodes 31 to .
[0031] By forming the vertical Hall element 100 in this manner, it is possible to obtain a concentration profile of the impurities contained in the semiconductor substrate 10 and the impurity diffusion layer 20, as shown on the right side of Fig. 1(b). As shown in this concentration profile, the impurity diffusion layer 20 has a peak concentration where the N-type impurity becomes higher as it becomes deeper. Also, in the impurity diffusion layer 20, the impurity concentration decreases as it becomes deeper from the peak concentration depth.
[0032] Next, the principle of detecting a magnetic field component in a direction parallel to the semiconductor substrate 10 in the vertical Hall element 100 of the semiconductor device of this embodiment will be described with reference to FIG.
[0033] 2 is an explanatory diagram showing the operation principle of the vertical Hall element of the first embodiment, which diagrammatically shows how drive currents flow from electrode 33 to electrodes 31 and 35 in the +X and -X directions, respectively.
[0034] As shown in FIG. 2, when a voltage is applied so that a current flows from the electrode 33 located in the center among the electrodes 31 to 35 to the electrodes 31 and 35 located at both ends, a current Ih 1 , Ih 2 As shown by x, a current also flows inside the impurity diffusion layer 20. The depth of this current path depends on the resistance value in the path. That is, in the impurity diffusion layer 20 in which the electrodes 31 to 35 are formed, the impurity concentration distribution becomes higher and the resistance value becomes lower as the depth increases, so that the current path reaches the peak concentration depth of the impurity diffusion layer 20 even though the current path length is longer.
[0035] The current Ih that flows in this way 1 , Ih 2 For each, when a magnetic field H is applied in the -Y direction, a current Ih 1For a charged particle, the current Ih 2 The Lorentz force acts on the charged particles in the -Z direction, generating a Hall voltage with a potential difference of opposite positive and negative. The vertical Hall element 100 outputs a voltage between the electrodes 32 and 34 so as to add up the absolute values of these potential differences, thereby enabling it to detect the magnetic field H applied from the -Y direction with good sensitivity.
[0036] Furthermore, if the impurity concentration of the N-type impurity diffusion layer 20 is equal to or higher than the impurity concentration of the semiconductor substrate 10 near the interface with the P-type semiconductor substrate 10 that contacts the bottom surface, the depletion layer formed at the interface between the impurity diffusion layer 20 and the semiconductor substrate 10 is unlikely to spread into the impurity diffusion layer 20. For this reason, the impurity concentration of the impurity diffusion layer 20 is set to be equal to or higher than the impurity concentration of the semiconductor substrate 10 near the interface between the impurity diffusion layer 20 and the semiconductor substrate 10 to make it difficult for the depletion layer to spread into the impurity diffusion layer 20 and to prevent the spread of the depletion layer from reaching the peak concentration depth. In this way, even if the applied voltage is increased to increase sensitivity by passing a larger current, the current Ih 1 , Ih 2 The current path does not change significantly, and the magnetic field can be detected stably.
[0037] Furthermore, since the five electrodes 31 to 35 are arranged in a straight line on the surface of the impurity diffusion layer 20, the structure has high symmetry, so that the offset voltage output can be reduced even when no magnetic field is applied, and the reduced offset voltage can be effectively removed by the spinning current method described below.
[0038] Here, a method for removing the offset voltage of the vertical Hall element 100 by the spinning current method will be described with reference to FIG.
[0039] First, electrodes 31, 33, and 35 are used as drive current supply electrodes, a current is passed from electrode 33 to electrodes 31 and 35, electrodes 32 and 34 are used as Hall voltage output electrodes, and the voltage between electrodes 32 and 34 is obtained as output voltage Vout1. Then, the direction of the current is reversed and a current is passed from electrodes 31 and 35 to electrode 33, and the voltage between electrodes 32 and 34 is obtained as output voltage Vout2.
[0040] Furthermore, the drive current supply electrode and the Hall voltage output electrode are interchanged to pass a current from electrode 32 to electrode 34, and the voltage between electrode 33 and electrodes 31 and 35 is obtained as output voltage Vout3. Moreover, the direction of the current flow is reversed to pass a current from electrode 34 to electrode 32, and the voltage between electrode 33 and electrodes 31 and 35 is obtained as output voltage Vout4.
[0041] By adding or subtracting these output voltages Vout1 to Vout4, the offset voltage can be removed.
[0042] In this way, in the spinning current method, the electrodes arranged in a straight line can be used as if they were arranged alternately as drive current supply electrodes and Hall voltage output electrodes by switching, and the offset voltage can be eliminated by appropriately switching the direction of the current flow and exchanging the roles of the drive current supply electrodes and the Hall voltage output electrodes.
[0043] In addition, although such a spinning current method can eliminate the offset voltage due to the symmetry of the structure, it cannot eliminate the offset voltage that occurs when the current path changes due to the expansion of the depletion layer. Therefore, in the vertical Hall element 100, the expansion of the depletion layer is prevented from reaching the peak concentration depth. Furthermore, the spinning current method has been described above in which the number of electrodes is five, but the present invention is not limited to this and can be implemented in any case in which there are five or more electrodes.
[0044] (Modification of the first embodiment) FIG. 3 is a schematic plan view showing a vertical Hall element which is a modification of the first embodiment. As shown in FIG. 3, the modified example of the first embodiment is similar to the first embodiment except that the impurity diffusion layer 20 in the first embodiment has a three-layer structure of epitaxial layers 21a, 21b, and 21c each having a different impurity concentration.
[0045] In a manufacturing method of the vertical Hall element of the modified first embodiment, instead of forming the impurity diffusion layer 20, an epitaxial layer 21a having a constant impurity concentration by adding N-type impurities is deposited on the surface of the semiconductor substrate 10, and epitaxial layers 21b and 21c are sequentially deposited on the epitaxial layer 21a while decreasing the amount of added impurity.
[0046] As a result, in the modified example of the first embodiment, there is no step of diffusing impurities as in the first embodiment, and the variation in impurity concentration can be suppressed more than in the first embodiment, so the offset voltage can be reduced.
[0047] Second Embodiment FIG. 4 is a schematic plan view illustrating the operating principle of the vertical Hall element according to the second embodiment. As shown in FIG. 4, the second embodiment is similar to the first embodiment, except that the upper part of the impurity diffusion layer 20 in the first embodiment is a semiconductor layer 60 having a constant impurity concentration, and the insulating film 40 is an insulating film 41 whose bottom is located deeper than the bottom surfaces of the electrodes 31-35 relative to the surface of the impurity diffusion layer 20.
[0048] The semiconductor layer 60 is an epitaxial layer with a constant impurity concentration in the manufacturing method of the vertical Hall element 100 of the first embodiment, and is a region at a depth where the impurities implanted into the semiconductor substrate 10 have not diffused. In other words, if the semiconductor layer 60 is regarded as a part of the impurity diffusion layer 20, the impurity concentration of the impurity diffusion layer 20 increases as the impurity diffusion layer 20 becomes deeper from a predetermined depth. As a result, in the second embodiment, the impurities implanted into the semiconductor substrate 10 do not need to be diffused as much as in the first embodiment, which facilitates manufacturing and makes it possible to suppress variations in the impurity concentration due to diffusion.
[0049] The impurity concentration of the semiconductor layer 60 is not particularly limited and can be appropriately selected depending on the purpose. However, it is preferable that the impurity concentration be in a range that can expand the current path in a balanced manner. For example, 1×10 15 atoms / cm 3 5×10 or more 16 atoms / cm 3 The following may also be used. The thickness of the semiconductor layer 60 is not particularly limited and can be appropriately selected depending on the purpose, but it is preferable to have a thicker thickness within a range that allows the current path to be expanded in a balanced manner, and for example, it may be set to the thicker end of the range of 6 μm or more and 15 μm or less.
[0050] The insulating film 41 is formed to a depth greater than the depth of the electrodes 31-35. This makes it possible to suppress the current flowing in the shortest distance between each of the electrodes 31 to 35 provided on the surface of the semiconductor layer 60 in a direction parallel to the semiconductor substrate 10 (X-axis direction), and to induce the current to flow in the depth direction (-Z direction).
[0051] The depth of the insulating film 41 is not particularly limited as long as it can induce a current to flow in the depth direction (−Z direction), and can be appropriately selected depending on the purpose. In this embodiment, the electrodes 31 to 35 have a depth of 0.1 μm, and the insulating film 41 has a depth of 0.3 μm.
[0052] As described above, in the second embodiment, the upper portion of the impurity diffusion layer 20 in the first embodiment is made into a semiconductor layer 60 having a constant impurity concentration, and the insulating film 40 in the first embodiment is made into an insulating film 41 that is deeper than the depth of the electrodes 31 to 35. As a result, in the second embodiment, the impurities implanted in the semiconductor substrate 10 do not need to be diffused as much as in the first embodiment, making the manufacturing easier and suppressing variations in the impurity concentration due to diffusion. Also, the insulating film 41 can suppress the current flowing in the shortest distance in the X-axis direction between the electrodes 31-35 and induce the current to flow in the -Z direction.
[0053] As described above, a semiconductor device according to an embodiment of the present invention includes a first conductivity type semiconductor substrate and a vertical Hall element provided on the semiconductor substrate. The vertical Hall element includes a second conductivity type impurity diffusion layer provided on the semiconductor substrate, the impurity concentration of which increases with depth, and three or more electrodes formed in a straight line on the surface of the impurity diffusion layer and made of a second conductivity type impurity region having a higher concentration than the impurity diffusion layer. This makes it possible to provide a semiconductor device having a vertical Hall element capable of improving sensitivity.
[0054] Although the embodiment of the present invention has been described above, it goes without saying that the present invention is not limited to the above embodiment, and various modifications are possible without departing from the spirit of the present invention.
[0055] For example, the first conductivity type has been described as P type and the second conductivity type as N type, but the conductivity types may be interchanged, with the first conductivity type being N type and the second conductivity type being P type.
[0056] In addition, in each of the above embodiments, the number of electrodes is five, but in cases where the offset voltage can be made small enough that removal of the offset voltage by the spinning current method is unnecessary or is tolerable, a total of three electrodes, consisting of at least two drive current supply electrodes and one Hall voltage output electrode, may be sufficient. In other words, the electrodes 34 and 35 of the vertical Hall element 100 shown in FIG. 2 are not formed, and the current Ih 1 By making it possible to detect the magnetic field H using only this, the layout area can be reduced, making it possible to miniaturize the vertical Hall element. [Explanation of symbols]
[0057] 10. Semiconductor Substrate 20 Impurity diffusion layer 21 Epitaxial layer 31, 32, 33, 34, 35 electrode 40, 41 Insulating film 50 Element isolation diffusion layer 60 Semiconductor layer 100 Vertical Hall element
Claims
1. a semiconductor substrate of a first conductivity type; a vertical Hall element provided on the semiconductor substrate; having The vertical Hall element is an epitaxial layer provided on the semiconductor substrate, the epitaxial layer having a constant impurity concentration from a surface to a predetermined depth, and an impurity diffusion layer of a second conductivity type having an impurity concentration that increases with increasing depth from the predetermined depth; three or more electrodes provided in a straight line on a surface of the impurity diffusion layer and made of a second conductivity type impurity region having a higher concentration than the impurity diffusion layer; A semiconductor device comprising:
2. 2. The semiconductor device according to claim 1, further comprising a first conductive type element isolation diffusion layer that is provided so as to surround the vertical Hall element and is formed deeper than the impurity diffusion layer.
3. 3. The semiconductor device according to claim 1, wherein an impurity concentration of the impurity diffusion layer has a peak concentration, decreases with increasing depth from a depth at which the peak concentration is reached, and an impurity concentration near a surface side of an interface with the semiconductor substrate is equal to or higher than an impurity concentration of the semiconductor substrate.
4. 4. The semiconductor device according to claim 1, further comprising an insulating film provided around the electrode on the surface of the impurity diffusion layer, the bottom of the insulating film being located deeper than a bottom surface of the electrode relative to the surface.
Citation Information
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