Plasmonic optical enhancement chip system and applications thereof

CN115927561BActive Publication Date: 2026-09-25PHOTONIC VIEW TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202110927834.7
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2021-08-11
Publication Date
2026-09-25
Estimated Expiration
2041-08-11

AI Technical Summary

Technical Problem

[0003]鉴于以上所述现有技术的缺点,本发明的目的在于提供一种等离激元光学增强芯片系统及其应用,用于解决现有技术中生物芯片检测灵敏度较低的问题

Benefits of technology

[0021]如上所述,本发明的等离激元光学增强芯片系统具有超高灵敏检测能力,可以实现最低单个分子的超高灵敏的光学检测。原理是利用等离激元增强电场的放大作用,对光学增强天线结构内部的分子进行高效激发,从而获得单分子灵敏度的光学信号,此光学信号包括光谱信号和/或荧光。本发明的等离激元光学增强芯片系统可以应用于单分子检测和DNA/RNA测序领域。

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Abstract

The application provides a plasmonic optical enhancement chip system and application thereof, and the system comprises a nanopore chip, an integrated optical chip and an image sensor chip, wherein the nanopore chip is provided with at least one reaction unit, the reaction unit comprises a Bragg mirror and a microcavity, and the bottom surface of the microcavity is provided with a nanopore; the integrated optical chip comprises at least one optical unit, is used for irradiating excitation light on the microcavity, collecting optical signals excited at the nanopore, and outputting the collected optical signals after processing; and the image sensor chip comprises at least one photoelectric conversion unit, is used for receiving the optical signals output by the integrated optical chip and converting the optical signals into electrical signals. The plasmonic optical enhancement chip system of the application utilizes the amplification effect of the plasmonic enhanced electric field, efficiently excites molecules at the nanopore of the microcavity, has super-high sensitive detection capability, can realize super-high sensitive optical detection of the lowest single molecule, and can be applied to the fields of single molecule detection and DNA / RNA sequencing.
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Description

Technical Field

[0001] This invention belongs to the field of biochip technology and relates to a plasmonic optical enhancement chip system and its application. Background Technology

[0002] Biochips have a wide range of applications, finding broad use in life science research and practice, medical research and clinical practice, drug design, environmental protection, agriculture, military and other fields, and have broad economic, social and scientific prospects. Improving the detection sensitivity of biochips has become an important technical problem that urgently needs to be solved by those skilled in the art. Summary of the Invention

[0003] In view of the shortcomings of the prior art described above, the purpose of this invention is to provide a plasmonic optical enhancement chip system and its application, which solves the problem of low detection sensitivity of biochips in the prior art.

[0004] To achieve the above and other related objectives, the present invention provides a plasmonic optical enhancement chip system, comprising:

[0005] A nanoporous chip includes a nanoporous chip body and a metal film. The nanoporous chip body has at least one reaction unit, which includes a Bragg mirror and a microcavity. The microcavity opens from the top surface of the nanoporous chip body and extends to the bottom surface of the nanoporous chip body to form a nano-opening. The Bragg mirror is distributed on both sides of the microcavity and is spaced at a predetermined distance from the microcavity. The metal film is located on the upper surface of the nanoporous chip body and covers the surface of the Bragg mirror and the surface of the microcavity.

[0006] An integrated optical chip is located above the nanopore chip. The integrated optical chip includes at least one optical unit for irradiating the microcavity with excitation light, collecting the optical signals excited at the nanopore opening, and processing and outputting the collected optical signals.

[0007] An image sensor chip is located above the integrated optical chip. The image sensor chip includes at least one photoelectric conversion unit for receiving optical signals output by the integrated optical chip and converting them into electrical signals.

[0008] Optionally, the opening area of ​​the microcavity gradually decreases from top to bottom.

[0009] Optionally, the shape of the nano-opening includes one of rectangle, square and circle.

[0010] Optionally, the optical unit includes a single-mode waveguide, a focusing grating coupler, a collecting grating coupler, a planar waveguide, a multimode waveguide, and a static interferometer. The single-mode waveguide is used to transmit excitation light to the focusing grating coupler, which is used to focus the excitation light downwards and project it into the microcavity. The collecting grating coupler is used to collect the optical signal excited at the nano-aperture and transmit it sequentially through the planar waveguide and the multimode waveguide to the static interferometer. The static interferometer is used to generate interference signals and project them into the image sensor chip.

[0011] Optionally, the optical unit further includes a microring resonator structure disposed next to the multimode waveguide to filter out excitation light.

[0012] Optionally, the microring resonator structure includes a ring waveguide, a strip waveguide, and a metal block, wherein the ring waveguide is located between the multimode waveguide and the strip waveguide, and the metal block is connected to the output end of the strip waveguide.

[0013] Optionally, the plasmonic optical enhancement chip system further includes a laser and an optical fiber, and the integrated optical chip is connected to the laser via the optical fiber.

[0014] Optionally, the excitation light generated by the laser enters the integrated optical chip through the optical fiber in an end-face coupling or grating coupling manner.

[0015] Optionally, the plasmonic optical enhancement chip system includes multiple reaction units, multiple optical units, and multiple photoelectric conversion units to form multiple detection units, and one detection unit includes one reaction unit, one optical unit, and one photoelectric conversion unit.

[0016] Optionally, the integrated optical chip further includes a multi-stage multimode interference coupler, which is used to split the excitation light in the integrated optical chip into multiple beams for input to different optical units.

[0017] The present invention also provides an application of a plasmonic optical enhancement chip system, which utilizes the plasmonic optical enhancement chip system described in any of the above claims to detect the optical signals of molecules.

[0018] Optionally, an optical signal with single-molecule sensitivity can be obtained.

[0019] Optionally, the optical signal includes at least one of a spectral signal and a fluorescence signal.

[0020] Optionally, the plasmonic optical enhancement chip system can be used for DNA sequencing or RNA sequencing.

[0021] As described above, the plasmonic optical enhancement chip system of the present invention possesses ultra-high sensitivity detection capability, enabling ultra-high sensitivity optical detection down to the lowest single molecule level. The principle is based on utilizing the amplification effect of the plasmonic enhanced electric field to efficiently excite molecules within the optical enhancement antenna structure, thereby obtaining an optical signal with single-molecule sensitivity. This optical signal includes spectral signals and / or fluorescence. The plasmonic optical enhancement chip system of the present invention can be applied to single-molecule detection and DNA / RNA sequencing fields. Attached Figure Description

[0022] Figure 1 The diagram shows the architecture and schematic of the plasmonic optical enhancement chip system of the present invention.

[0023] Figure 2 This is a partial top view of the nanopore chip.

[0024] Figure 3 This is another partial top view of the nanoporous chip.

[0025] Figure 4 The diagram shown illustrates the working principle of the nanopore chip.

[0026] Figure 5 This is a schematic diagram of an end-face coupling method.

[0027] Figure 6 This is a schematic diagram of a grating coupling method.

[0028] Figure 7 The diagram shows a rectangular grating structure used in the coupling grating.

[0029] Figure 8 The diagram shows a fan-shaped grating used in the grating structure of a coupled grating.

[0030] Figure 9 The diagram shows a subwavelength grating used in the coupling grating structure.

[0031] Figure 10 The diagram shows the semi-elliptical shape of the collecting grating coupler.

[0032] Figure 11 The diagram shows the semi-circular shape of the collecting grating coupler.

[0033] Figure 12 The diagram shown is a schematic of a micro-ring resonator structure.

[0034] Figure 13 The diagram shows a chip-type spectrometer formed by packaging a static interferometer and an image sensor chip.

[0035] Figure 14 The diagram shows a multi-array configuration of the plasmonic optical enhancement chip system.

[0036] Figure 15 The diagram shown is a schematic of a multimode interference coupler structure.

[0037] Figure 16 The diagram shown is a schematic of a multi-stage multimode interference coupler structure.

[0038] Figure 17 The diagram shows the structure of the second type of static interferometer.

[0039] Figure 18 The diagram shown is a structural schematic of the third type of static interferometer.

[0040] Figure 19 The diagram shown is a structural schematic of the fourth type of static interferometer.

[0041] Figure 20 The diagram shown is a structural schematic of the fifth type of static interferometer.

[0042] Component designation explanation

[0043] 1 Nanopore chip

[0044] 101 nanopore chip body

[0045] 102 metal film

[0046] 103 Bragg reflector

[0047] 104 microcavities

[0048] 105 nanometer opening

[0049] 2 Integrated optical chip

[0050] 201 base

[0051] 202 Optical Waveguide

[0052] 203 Grating Structure

[0053] 204 waveguide

[0054] 204a planar waveguide

[0055] 204b single-mode waveguide

[0056] 205 Single-mode waveguide

[0057] 206 Focusing grating coupler

[0058] 207 Collection grating coupler

[0059] 208 Planar Waveguide

[0060] 209 Multimode Waveguide

[0061] 210 Static Interferometer

[0062] 210a Multimode Interference Coupler Structure

[0063] 210b grating structure

[0064] 210c Multi-stage Multimode Interference Coupler Structure

[0065] 210d interferometer unit structure

[0066] 210e multimode waveguide

[0067] 210F reflector

[0068] 210g multimode interference coupler

[0069] 210h loop waveguide

[0070] 210i Incident Waveguide

[0071] 210j input coupler

[0072] 210k array waveguide

[0073] 210L Output Coupler

[0074] 210m outgoing waveguide

[0075] 210n microlens array

[0076] 211 Microring Resonator Structure

[0077] 211a Ring Waveguide

[0078] 211b strip waveguide

[0079] 211c metal block

[0080] 212 Multi-stage multimode interference coupler

[0081] 3 Image sensor chip

[0082] 4. Laser

[0083] 5 optical fibers

[0084] 501 single-mode fiber

[0085] 6. Chip-based spectrometer

[0086] 7 molecules

[0087] 8. Data processing equipment

[0088] M surface plasmons Detailed Implementation

[0089] The following specific examples illustrate the implementation of the present invention. Those skilled in the art can easily understand other advantages and effects of the present invention from the content disclosed in this specification. The present invention can also be implemented or applied through other different specific embodiments, and various details in this specification can also be modified or changed based on different viewpoints and applications without departing from the spirit of the present invention.

[0090] Please see Figures 1 to 20 It should be noted that the illustrations provided in this embodiment are only schematic representations of the basic concept of the present invention. Therefore, the drawings only show the components related to the present invention and are not drawn according to the actual number, shape and size of the components in the actual implementation. In the actual implementation, the form, quantity and proportion of each component can be arbitrarily changed, and the layout of the components may also be more complex.

[0091] This invention provides a plasmonic optical enhancement chip system; please refer to [link / reference]. Figure 1 The diagram shows the architecture and schematic of the plasmonic optical enhancement chip system, including a nanopore chip 1, an integrated optical chip 2, and an image sensor chip 3. The nanopore chip 1 includes a nanopore chip body 101 and a metal film 102. The nanopore chip body 101 contains at least one reaction unit, which includes a Bragg mirror 103 and a microcavity 104. The microcavity 104 opens from the top surface of the nanopore chip body 101 and extends to the bottom surface of the nanopore chip body 101 to form a nano-opening 105. The Bragg mirror 103 is distributed on both sides of the microcavity 104 and is spaced at a predetermined distance from the microcavity 104. The metal film 102 is located on the upper surface of the nanoporous chip body 101 and covers the surface of the Bragg reflector 103 and the surface of the microcavity 104; the integrated optical chip 2 is located above the nanoporous chip 1, and the integrated optical chip 2 includes at least one optical unit for irradiating the microcavity 104 with excitation light, collecting the optical signal excited at the nano-opening 105, and processing and outputting the collected optical signal; the image sensor chip 3 is located above the integrated optical chip 2, and the image sensor chip 3 includes at least one photoelectric conversion unit for receiving the optical signal output by the integrated optical chip 2 and converting it into an electrical signal.

[0092] As an example, the image sensor chip 3 is connected to the data processing device 8.

[0093] As an example, the nanoporous chip body 101 can be made of a rigid or flexible material. The rigid material can be silicon, silicon nitride, silicon dioxide, aluminum nitride, hafnium dioxide, glass, or other suitable materials. The flexible material can be polymethyl methacrylate (PMMA), polydimethylsiloxane (PDMS), or other suitable materials. The metal film 102 includes at least one of gold, silver, copper, and platinum films.

[0094] As an example, the opening area of ​​the microcavity 104 gradually decreases from top to bottom, and the nano-opening 105 at the bottom of the microcavity 104 has a size at least in one dimension that is at the nanometer level (e.g., 0.1-1000 nm).

[0095] As an example, the Bragg reflector 103 includes a plurality of grating grooves formed in the nanopore chip body 101. The grating grooves open from the top surface of the nanopore chip body 101 and extend toward the bottom surface of the nanopore chip body 101, but do not penetrate the bottom surface of the nanopore chip body 101.

[0096] For example, please refer to Figure 2 The image shows a partial top view of the nanoporous chip 1, wherein the nano-openings 105 are in the form of nano-slits. Please refer to... Figure 3 The image shows another partial top view of the nanopore chip 1, wherein the nano-apertures 105 are in the form of nanopores. It should be noted that the shape of the nano-apertures 105 can be adjusted as needed, including but not limited to rectangles, squares, and circles. The arrangement of the multiple grating grooves of the Bragg reflector 103 can also be adjusted as needed, without being limited to... Figure 2 and Figure 3 The above is the limit.

[0097] Please see Figure 4 The diagram shows the working principle of the nanopore chip 1. Excitation light (as indicated by multiple parallel solid arrows in the diagram) irradiates the microcavity 104. The incident photons of the excitation light interact with the free electrons on the surface of the metal film 102, generating surface plasmon resonance (surface plasmon M is shown in the diagram), and producing a surface plasmon enhanced electric field. This surface plasmon electric field can propagate on the chip surface. When it propagates to the nano-opening 105 at the bottom of the microcavity 104, a stronger antenna enhancement effect occurs, resulting in a highly localized plasmon enhanced electric field. Figure 4The image shows multiple diverging dashed arrows illustrating the molecular optical signals excited by the plasmon electric field. This enhanced electric field, localized at the location of the nano-opening 105, can excite the fluorescence / Raman / vibrational / rotational / absorption / reflection spectra of molecule 7 within the nano-opening 105, exhibiting a very high-efficiency enhancement effect and enabling single-molecule detection sensitivity (e.g., it can produce 10...). 5 -10 20 (This provides a multiple enhancement effect). The Bragg mirrors 103 on both sides of the microcavity 104 on the surface of the nanoporous chip 1 serve a reflective function, reflecting back a portion of the optical signal generated within the nano-opening 105, thereby reducing the propagation loss of signal photons on the surface and enhancing the intensity of the optical signal. The detected molecule 7 can be transported to the nano-opening 105 from above or below the nanoporous chip 1.

[0098] For example, please refer back to [link / reference]. Figure 1 The plasmonic optical enhancement chip system also includes a laser 4 and an optical fiber 5. The integrated optical chip 2 is connected to the laser 4 via the optical fiber 5. The laser 4 and the optical fiber 5 are essential optical components outside the chip architecture, providing the optical excitation function in the chip. The laser 4 outputs an excitation light source through the optical fiber 5, and the excitation light is coupled into the integrated optical chip 2 through grating coupling or end-face coupling.

[0099] As an example, the optical fiber 5 can be a single-mode optical fiber or a single-mode optical fiber lens.

[0100] For example, please refer to Figure 5 The diagram shows a schematic of an end-face coupling method, in which the excitation light is directly and closely aligned with the end face of the optical waveguide 202 on the substrate 201 of the integrated optical chip 2 through a single-mode optical fiber 501. The light emitted from the single-mode optical fiber 501 can be coupled into the optical waveguide 202 for further transmission.

[0101] For example, please refer to Figure 6 The diagram illustrates a principle of grating coupling, where excitation light is emitted through a single-mode fiber 501 to a grating structure 203 on the substrate 201 of the integrated optical chip 2, and coupled into a waveguide 204 by the grating structure 203 for further propagation. The central axis of the single-mode fiber 501 deviates from the normal by a preset angle θ.

[0102] For example, please refer to Figures 7 to 9 The diagram shows top views of several common coupling gratings, among which... Figure 7The diagram shows a rectangular grating used in the coupling grating structure 203. Figure 8 The diagram shows a sector grating used in the coupling grating structure 203. Figure 9 The diagram shows a subwavelength grating as the grating structure 203 in the coupling grating. In this embodiment, the overall structure of the coupling grating includes the periodic grating structure 203 and a planar waveguide 204a and a single-mode waveguide 204b connected to the output end of the grating structure 203. After the excitation light from outside the integrated optical chip 2 is coupled into the grating, it continues to be transmitted through the single-mode waveguide 204b.

[0103] Please refer back to this. Figure 1 In the integrated optical chip 2, the optical unit includes a single-mode waveguide 205, a focusing grating coupler 206, a collecting grating coupler 207, a planar waveguide 208, a multimode waveguide 209, and a static interferometer 210. The single-mode waveguide 205 is used to transmit the excitation light to the focusing grating coupler 206. The focusing grating coupler 206 is used to focus the excitation light downwards and project it onto the microcavity 104. The collecting grating coupler 207 is used to collect the optical signal excited at the nano-opening 105 and transmit it sequentially through the planar waveguide 208 and the multimode waveguide 209 to the static interferometer 210. The static interferometer 210 is used to generate an interference signal and project it into the image sensor chip 3.

[0104] Specifically, the focusing grating coupler 206 and the collecting grating coupler 207 utilize the principle of a diffraction grating to control the beam propagation direction, achieving optical focusing or optical collecting effects. To increase the excitation or collection efficiency, the overall size of the focusing grating coupler 206 and the collecting grating coupler 207 can be made relatively large, with the size range controllable between 50-5000 μm.

[0105] For example, please refer to Figure 10 and Figure 11 The diagram shows the sequential connection of the collecting grating coupler 207, the planar waveguide 208, and the multimode waveguide 209. The collecting grating coupler 207 can be, for example, as shown below. Figure 10 The semi-ellipse shown can also be as follows: Figure 11 The semi-circle shown is similar in shape to the focusing grating coupler 206, which will not be described in detail here.

[0106] As an example, the optical unit also includes a microring resonator structure 211 disposed next to the multimode waveguide 209 to filter out excitation light.

[0107] For example, please refer to Figure 12 The diagram shows the schematic of the micro-ring resonator structure 211, which includes a ring waveguide 211a, a strip waveguide 211b, and a metal block 211c. The ring waveguide 211a is located between the multimode waveguide 209 and the strip waveguide 211b, and the metal block 211c is connected to the output end of the strip waveguide 211b. By designing the dimensions of the ring waveguide 211a, a specific wavelength can be selected. The selected wavelength photon is coupled into the ring waveguide 211a via an evanescent wave. When the optical path length of the photon in the ring waveguide 211a is equal to an integer multiple of the wavelength, interference enhancement occurs, forming a whispering gallery mode. The photon then remains within the ring waveguide 211a and propagates. The photon is then coupled out of the ring waveguide 211a through another shorter strip waveguide 211b. The photon is absorbed by the metal block 211c, thereby eliminating the photon of that wavelength from the original input photon. This allows for filtering of the excitation light of the spectral signal.

[0108] For example, please refer to Figure 13 The diagram shows a schematic of a chip-type spectrometer 6 formed by packaging the static interferometer 210 and the image sensor chip 3. The static interferometer 210 has a multimode interference coupler structure 210a at its coupling end. The spectral signal propagates through the multimode waveguide 209 and couples into the multimode interference coupler structure 210a. The signal is then split in two by the multimode interference coupler structure 210a and propagates forward through two parallel optical waveguides (which may be made of silicon nitride). The two optical waveguides are designed with different widths, resulting in a phase difference between the photons propagating in the two waveguides. Furthermore, when the two optical signals propagate within the waveguides, the evanescent fields generated by total internal reflection overlap between the two parallel waveguides, producing an interference signal. A periodic grating structure 210b is fabricated in the region between the two waveguides to diffract the interference signal upwards into the image sensor chip 3. The image sensor chip 3 can be a linear or rectangular CCD array to receive the interference signal and obtain the interference pattern. The interference pattern can be processed by Fourier transform to obtain spectral information.

[0109] For example, please refer to Figure 14The diagram shows a multi-array configuration of the plasmonic optical enhancement chip system, comprising multiple reaction units, multiple optical units, and multiple photoelectric conversion units to form multiple detection units. Each detection unit includes one reaction unit, one optical unit, and one photoelectric conversion unit. The integrated optical chip 2 further includes a multi-stage multimode interference coupler 212, which splits the excitation light input from the excitation source into the integrated optical chip 2 into multiple beams for input to different optical units. The image sensor chip 3 is connected to a data processing device 8.

[0110] For example, please refer to Figure 15 The diagram shows a schematic of a multimode interference coupler structure. Multimode interference couplers are commonly used micro / nano optical devices in integrated optics, allowing light waves to propagate and be controlled to split into two beams. An ideal 1×2 multimode interference coupler structure is a 50 / 50 beam splitter, separating the incoming light waves into two beams with a 50 / 50 ratio. (See also...) Figure 16 The diagram shows a multi-stage multimode interference coupler structure. According to the principle of splitting light into two, the multi-stage MMI structure can split the light wave into many beams of equal intensity, and then the light wave continues to propagate in the waveguide.

[0111] The working principle of the plasmonic optical enhancement chip system of the present invention is as follows: The laser 4 outputs an excitation source through the optical fiber 5. The excitation light is coupled into the multi-level multimode interference coupler 212 in the integrated optical chip 2 through grating coupling or end-face coupling. The multi-level multimode interference coupler 212 divides the excitation light into multiple beams of equal power, which are transmitted in the single-mode waveguide 205 (the output structure of the multi-level multimode interference coupler 212 is connected to the single-mode waveguide 205). The multiple beams of parallel excitation light are transmitted forward in the single-mode waveguide 205 to the diffractive focusing grating coupler 206, which acts as an excitation grating to focus the excitation light downwards and project it into the microcavity 104, thereby exciting the optical signal of the molecule 7 at the nano-opening 105 at the bottom of the microcavity 104. The excited optical signal is scattered upwards and collected by the collecting grating coupler 207. It then converges through the planar waveguide 208 into the multimode waveguide 209 and is transmitted into the static interferometer 210. The micro-ring resonator structure 211 adjacent to the multimode waveguide 209 filters out the excitation light. The optical signal after the excitation light is filtered out enters the static interferometer 210. Photons of different wavelengths interfere in the static interferometer 210 and are projected upwards by the scattering grating into the image sensor chip 3, forming an interference pattern. A Fourier transform of the interference pattern yields the spectral information of the optical signal.

[0112] It should be noted that the static interferometer 210 is not limited to Figure 1 , Figure 13 , Figure 14 The types shown, for example, can also be adopted as... Figures 17 to 20 The type presented in any given image.

[0113] Specifically, Figure 17 The presented static interferometer includes a multi-stage multimode interference coupler structure 210c and multiple interferometer unit structures 210d. Each interferometer unit structure 210d includes a Fabry-Perot interferometer cavity, and the cavity lengths of the Fabry-Perot interferometer cavities in each interferometer unit structure 210d are different. The length differences are designed using a gradient, which can ultimately acquire multiple sets of interference patterns with different fringe spacings and peak intensities, resolving precise spectra. In the chip structure, the more interferometer unit structures there are, the wider the spectral range that can be resolved.

[0114] Specifically, Figure 18 The presented static interferometer includes a multimode waveguide 210e and a reflector 210f placed at the end of the multimode waveguide 210e. The spectral signal propagates forward in the multimode waveguide 210e to the reflector 210f and is reflected back. The incident signal photon and the reflected signal photon undergo standing wave interference at the center of the multimode waveguide 210e (multiple elongated ellipses are used to illustrate this in the figure). The interference pattern can be captured using a linear image sensor chip, and the spectral information is obtained after Fourier transform.

[0115] Specifically, Figure 19 The presented static interferometer includes a multimode interference coupler 210g and a loop waveguide 210h. The spectral signal propagates in the multimode waveguide to the multimode interference coupler 210g, which splits the incident signal photons into two beams that enter the loop waveguide 210h. The two beams of signal photons eventually meet at the center of the loop waveguide 210h, resulting in standing wave interference (shown as multiple elongated ellipses in the figure). The interference pattern can be captured using a linear image sensor chip, and the spectral information is obtained after Fourier transform.

[0116] Specifically, Figure 20The presented static interferometer employs an arrayed waveguide grating (AWG). Signal photons enter the input coupler 210j from the incident waveguide 210i. The input coupler 210j is a planar waveguide. Signal photons are diffracted at the interface between the input coupler 210j and the incident waveguide 210i, and their intensity in the direction perpendicular to the propagation direction enters the array waveguide 210k in a Gaussian distribution. The interface between the array waveguide 210k and the input coupler 210j is curved, ensuring that diffracted light at all positions arrives at the end face of the array waveguide 210k with the same phase. The array waveguide 210k consists of a series of similarly shaped strip waveguides with adjacent waveguides having the same length difference. Throughout the array, the total length of each waveguide increases / decreases gradually. Due to the length difference, light of different wavelengths propagates in the array waveguide 210k and possesses the same phase difference. Signal photons enter the output coupler 210l from the arrayed waveguide 210k. The output coupler 210l is also a planar waveguide structure with curved surfaces at both ends, and the two curved surfaces lie on the same circumference. The other end of the output coupler 210l is connected to the outgoing waveguide 210m. Due to the phase difference, signal photons of different wavelengths are diffracted in the planar waveguide of the output coupler 210l and focused in different outgoing waveguides 210m, achieving wavelength separation (the figure illustrates n wavelengths: λ1~λ2). n The outgoing waveguide 210m focuses the wavelength-separated signal photons onto the linear image sensor chip 3 through the microlens array 210n to obtain an interference pattern, which is then transformed by inverse Fourier transform to obtain spectral information.

[0117] Of course, in other embodiments, the static interferometer 210 may also be of other suitable types, and the scope of protection of the present invention should not be overly limited here.

[0118] The plasmonic optical enhancement chip system of the present invention can be applied to detect the optical signals of molecules, achieving ultra-high sensitivity optical detection down to the lowest possible single molecule. The optical signals include at least one of spectral signals and fluorescence signals. Furthermore, the plasmonic optical enhancement chip system can be used for DNA sequencing or RNA sequencing.

[0119] It should be noted that the image sensor 3 may include arrayed or linear optical multiplier tubes (PMTs), single-photon avalanche diodes (SPADs), charge-coupled devices (CCDs), silicon photomultiplier tubes (SiPMs), or individual PMTs, SPADs, CCDs, SiPMs, or photodiodes. If it is a single PMT, SPAD, CCD, SiPM, or photodiode, the plasmonic optical enhancement chip system of the present invention can be used to detect the fluorescence signal intensity of a single molecule.

[0120] In summary, the plasmonic optical enhancement chip system of this invention possesses ultra-high sensitivity detection capability, enabling ultra-high sensitivity optical detection down to the lowest single molecule level. The principle is based on the amplification effect of the plasmonic enhanced electric field to efficiently excite molecules within the optical enhancement antenna structure, thereby obtaining a single-molecule sensitive optical signal, which includes spectral signals and / or fluorescence. The plasmonic optical enhancement chip system of this invention can be applied to single-molecule detection and DNA / RNA sequencing. Therefore, this invention effectively overcomes the various shortcomings of existing technologies and has high industrial applicability.

[0121] The above embodiments are merely illustrative of the principles and effects of the present invention and are not intended to limit the invention. Any person skilled in the art can modify or alter the above embodiments without departing from the spirit and scope of the present invention. Therefore, all equivalent modifications or alterations made by those skilled in the art without departing from the spirit and technical concept disclosed in the present invention should still be covered by the claims of the present invention.

Claims

1. A plasmonic optical enhancement chip system, characterized in that, include: A nanoporous chip includes a nanoporous chip body and a metal film. The nanoporous chip body has at least one reaction unit, which includes a Bragg mirror and a microcavity. The microcavity opens from the top surface of the nanoporous chip body and extends to the bottom surface of the nanoporous chip body to form a nano-opening. The Bragg mirror is distributed on both sides of the microcavity and is spaced at a predetermined distance from the microcavity. The metal film is located on the upper surface of the nanoporous chip body and covers the surface of the Bragg mirror and the surface of the microcavity. The metal film includes at least one of gold film, silver film, copper film and platinum film. An integrated optical chip is located above the nanopore chip. The integrated optical chip includes at least one optical unit for irradiating the microcavity with excitation light, collecting the optical signals excited at the nanopore opening, and processing and outputting the collected optical signals. An image sensor chip is located above the integrated optical chip. The image sensor chip includes at least one photoelectric conversion unit for receiving optical signals output by the integrated optical chip and converting them into electrical signals. The optical unit includes a single-mode waveguide, a focusing grating coupler, a collecting grating coupler, a planar waveguide, a multimode waveguide, and a static interferometer. The single-mode waveguide transmits excitation light to the focusing grating coupler, which focuses the excitation light downwards and projects it into the microcavity. The collecting grating coupler collects the optical signal excited at the nano-aperture and transmits it sequentially through the planar waveguide and the multimode waveguide to the static interferometer. The static interferometer generates interference signals and projects them into the image sensor chip. The static interferometer and the image sensor chip are packaged together to form a chip-type spectrometer; The image sensor chip is used to receive interference signals and obtain interference patterns. The interference patterns can be processed by Fourier transform to obtain spectral information.

2. The plasmonic optical enhancement chip system according to claim 1, characterized in that: The opening area of ​​the microcavity gradually decreases from top to bottom.

3. The plasmonic optical enhancement chip system according to claim 1, characterized in that: The shape of the nano-aperture includes one of rectangle, square and circle.

4. The plasmonic optical enhancement chip system according to claim 1, characterized in that: The optical unit also includes a microring resonator structure, which is disposed next to the multimode waveguide to filter out the excitation light.

5. The plasmonic optical enhancement chip system according to claim 4, characterized in that: The microring resonator structure includes a ring waveguide, a strip waveguide, and a metal block. The ring waveguide is located between the multimode waveguide and the strip waveguide, and the metal block is connected to the output end of the strip waveguide.

6. The plasmonic optical enhancement chip system according to claim 1, characterized in that: The plasmonic optical enhancement chip system also includes a laser and an optical fiber, and the integrated optical chip is connected to the laser via the optical fiber.

7. The plasmonic optical enhancement chip system according to claim 6, characterized in that: The excitation light generated by the laser enters the integrated optical chip through the optical fiber via end-face coupling or grating coupling.

8. The plasmonic optical enhancement chip system according to claim 1, characterized in that: The plasmonic optical enhancement chip system includes multiple reaction units, multiple optical units, and multiple photoelectric conversion units to form multiple detection units. Each detection unit includes a reaction unit, an optical unit, and a photoelectric conversion unit.

9. The plasmonic optical enhancement chip system according to claim 1, characterized in that: The integrated optical chip also includes a multi-level multimode interference coupler, which is used to split the excitation light in the integrated optical chip into multiple beams for input to different optical units.

10. An application of a plasmonic optical enhancement chip system, characterized in that: The optical signal of a molecule is detected using the plasmonic optical enhancement chip system as described in any one of claims 1-9.

11. The application of the plasmonic optical enhancement chip system according to claim 10, characterized in that: Obtain optical signals with single-molecule sensitivity.

12. The application of the plasmonic optical enhancement chip system according to claim 10, characterized in that: The optical signal includes at least one of fluorescence spectral signal, Raman spectral signal, vibrational spectral signal, rotational spectral signal, absorption spectral signal, and reflection spectral signal.

13. The application of the plasmonic optical enhancement chip system according to claim 10, characterized in that: DNA sequencing or RNA sequencing is performed using the aforementioned plasmonic optical enhancement chip system.

Citation Information

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