Single-beam super-resolution optical data storage device and method

CN117095721BActive Publication Date: 2026-09-25UNIV OF SHANGHAI FOR SCI & TECH
View PDF 2 Cites 0 Cited by

Patent Information

Application Number
CN202311068965.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-08-23
Publication Date
2026-09-25
Estimated Expiration
2043-08-23

AI Technical Summary

Technical Problem

[0004]针对现有成像方法需要脉冲激光或高功率连续激光的高功率电平来进行关断导致光数据存储材料的光损伤和光漂白的问题,现提供一种旨在可避免光数据存储材料的光损伤和光漂白且同时激发和抑制的单光束超分辨光学数据存储装置及方法

Benefits of technology

[0027]本技术方案中,本发明采用单光束进行光学数据存储,利用时间复用连续波(CW)光束波前和荧光团时间抑制过程的原理,允许点扫描单光束的超分辨率光学数据存储,通过打开和关闭光学数据存储单元,在短时间(激励)和长时间(抑制)之间进行时间调制,同时在激励和抑制之间进行波前调制来实现成像,可避免光数据存储材料的光损伤和光漂白,简化了光学数据存储装置的结构,同时提高了成像超分辨率。

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN117095721B_ABST
    Figure CN117095721B_ABST
Patent Text Reader

Abstract

The application discloses a single-beam super-resolution optical data storage device and method, and belongs to the technical field of optical data storage.The application adopts a single-beam for optical data storage, utilizes the principle of time multiplexing continuous wave beam wavefront and fluorophore time suppression process, allows super-resolution optical data storage of a point scanning single-beam, realizes imaging by opening and closing optical data storage units, time modulation between short time and long time, and wavefront modulation between excitation and suppression, and can avoid optical damage and optical bleaching of optical data storage materials, and meanwhile, the imaging super-resolution is improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This invention relates to the field of optical data storage technology, and more particularly to a single-beam super-resolution optical data storage device. Background Technology

[0002] The basic principle of stimulated emission depletion (STED) microscopy is to simultaneously irradiate the sample with two laser beams. One laser beam is used to excite fluorescent molecules, putting them in an excited state within the Airy disk area at the objective lens focal point. At the same time, another ring-shaped depletion laser beam with zero intensity at the center is superimposed on the STED beam. This causes the fluorescent molecules in the excited state at the edge of the Airy disk at the objective lens focal point to return to the ground state through stimulated emission depletion, without spontaneously emitting fluorescence. Therefore, only the fluorescent molecules in the central region can spontaneously emitting fluorescence, thus obtaining super-diffraction-limited fluorescent emission points.

[0003] The invention of super-resolution technologies, including STED and super-resolution photoinduction-inhibition nanolithography (SPIN), has revolutionized the fields of optical imaging and operational data storage (ODS), breaking the Abbe diffraction limit. In super-resolution technologies, STED and SPIN improve resolution by reducing the effective point spread function (PSF) through the switching control of two laser beams, revolutionizing point-scanning applications such as 3D optical imaging, endoscopy, lithography, and optical data storage. However, these two beam imaging methods require high-power levels of pulsed or high-power continuous lasers for the switching (suppression) process, leading to optical damage and photobleaching of the optical data storage materials. Furthermore, using two different laser beams in STED-like microscopes requires specialized filters, phase plates, dichroscopes, lasers, and chromatic aberration correction, complicating the system. Summary of the Invention

[0004] To address the problem that existing imaging methods require high-power levels of pulsed lasers or high-power continuous lasers for shutdown, which leads to optical damage and photobleaching of optical data storage materials, a single-beam super-resolution optical data storage device and method are provided that aims to avoid optical damage and photobleaching of optical data storage materials while simultaneously exciting and suppressing them.

[0005] This invention provides a single-beam super-resolution optical data storage device, comprising:

[0006] The receiving unit is used to receive read and write commands;

[0007] A continuous wave laser is used to emit a continuous wave laser beam according to read and write instructions, and then direct it to a time wavefront multiplexer.

[0008] A time wavefront multiplexer is used to modulate an incident continuous wave laser beam into an excitation pulse and a suppression pulse, which are then sequentially switched and incident on the read / write device.

[0009] The read / write device uses a time wavefront multiplexer to modulate a continuous-wave laser beam into excitation and suppression pulses. During writing, short excitation pulses and long suppression pulses are sequentially switched to form a write spot, which performs photolithography on the optical data storage unit to achieve the write operation. During reading, short excitation pulses and long suppression pulses are sequentially switched to form a read spot, which scans the optical data storage unit to read the data in the optical data storage unit to achieve the read operation.

[0010] The optical data storage unit is made of a material with triplet properties.

[0011] Preferably, the excitation light pulse is a Gaussian distributed pulse.

[0012] Preferably, the suppression light pulse is a donut-shaped pulse.

[0013] Preferably, the time wavefront multiplexer includes an acousto-optic modulator, a polarizer, an electro-optic modulator, a first polarization beamsplitter, a second polarization beamsplitter, a first reflector, a spiral phase plate, and a second reflector.

[0014] In the transmission direction of the laser beam emitted by the continuous wave laser, an acousto-optic modulator, a polarizer, an electro-optic modulator, and a first polarization beam splitter are arranged sequentially. A beam of light split from the first polarization beam splitter is incident on a first reflecting mirror. The light reflected by the first reflecting mirror is incident on a spiral phase plate. The light emitted from the spiral phase plate is incident on a second reflecting mirror. The light reflected by the second reflecting mirror is incident on a second polarization beam splitter. A beam of light split from the second polarization beam splitter is either an excitation light pulse or a suppression light pulse.

[0015] Preferably, the time wavefront multiplexer further includes a function generator for driving the acousto-optic modulator and the electro-optic modulator.

[0016] Preferably, the read / write device includes a third reflecting mirror, a photodetector, a quarter-wave plate, and an imaging objective lens;

[0017] The excitation and suppression light pulses split by the second polarization beam splitter are transmitted sequentially through the third mirror and incident on the imaging objective lens through the quarter-wave plate;

[0018] The light emitted from the optical data storage unit passes through the imaging objective lens and the quarter-wave plate and is incident on the third reflecting mirror. After being reflected by the third reflecting mirror, it is then incident on the photodetector.

[0019] Preferably, the photodetector is a single-photon avalanche diode.

[0020] The present invention also provides a single-beam super-resolution optical data storage method, comprising:

[0021] Upon receiving a write command, the data to be written is converted into an optical signal. A continuous-wave laser beam is emitted using a continuous-wave laser. A time-wavefront multiplexer modulates the continuous-wave laser beam into excitation and suppression pulses. Short excitation pulses and long suppression pulses are sequentially switched to form a write spot. Photolithography is then performed on the optical data storage unit to realize the write operation.

[0022] Upon receiving a read command, a continuous-wave laser beam is emitted using a continuous-wave laser. A time-wavefront multiplexer modulates the continuous-wave laser beam into excitation and suppression pulses. Short-duration excitation and long-duration suppression pulses are sequentially switched to form a read spot, which scans the optical data storage unit to read the data and complete the read operation.

[0023] The optical data storage unit is made of a material with triplet properties.

[0024] Preferably, the switching period of the excitation light pulse and the suppression light pulse ranges from 100 Hz to 1 MHz, the pulse length ranges from 1 ms to 1 ps, and the pulse interval ranges from 100 ms to 10 ps.

[0025] Preferably, the optical data storage unit achieves time modulation of the excitation and suppression light pulses by turning the optical data storage unit on and off.

[0026] The beneficial effects of the above technical solution are as follows:

[0027] In this technical solution, the present invention uses a single beam for optical data storage. Utilizing the principle of time-multiplexed continuous wave (CW) beam wavefront and fluorophore time suppression process, it allows for point-scanning single-beam super-resolution optical data storage. By opening and closing the optical data storage unit, time modulation is performed between short time (excitation) and long time (suppression), while wavefront modulation is performed between excitation and suppression to achieve imaging. This avoids optical damage and photobleaching of the optical data storage material, simplifies the structure of the optical data storage device, and improves imaging super-resolution. Attached Figure Description

[0028] Figure 1 This is a diagram of the optical path structure of the present invention;

[0029] Figure 2a This is a schematic diagram of the energy transfer path of the short-pulse incident sample in this invention;

[0030] Figure 2b This is a schematic diagram of the energy transfer path of the long-pulse incident sample in this invention;

[0031] Figure 3a This is a graph showing the pulse peak energy versus fluorescence intensity of the long pulse in this invention.

[0032] Figure 3b This is a graph showing the pulse peak energy versus the full width at half maximum (FWHM) of the fluorescence pulse in this invention. Detailed Implementation

[0033] The advantages of the present invention will be further illustrated below with reference to the accompanying drawings and specific embodiments.

[0034] Exemplary embodiments will now be described in detail, examples of which are illustrated in the accompanying drawings. When the following description relates to the drawings, unless otherwise indicated, the same numerals in different drawings denote the same or similar elements. The embodiments described in the following exemplary embodiments do not represent all embodiments consistent with this disclosure. Rather, they are merely examples of apparatuses and methods consistent with some aspects of this disclosure as detailed in the appended claims.

[0035] The terminology used in this disclosure is for the purpose of describing particular embodiments only and is not intended to be limiting of the disclosure. The singular forms “a,” “the,” and “the” as used in this disclosure and the appended claims are also intended to include the plural forms unless the context clearly indicates otherwise. It should also be understood that the term “and / or” as used herein refers to and includes any and all possible combinations of one or more of the associated listed items.

[0036] It should be understood that although the terms first, second, third, etc., may be used in this disclosure to describe various information, such information should not be limited to these terms. These terms are used only to distinguish information of the same type from one another. For example, without departing from the scope of this disclosure, first information may also be referred to as second information, and similarly, second information may also be referred to as first information. Depending on the context, the word "if" as used herein may be interpreted as "when," "when," or "in response to determination."

[0037] In the description of this invention, it should be understood that the numerical labels before the steps do not indicate the order in which the steps are performed, but are only used to facilitate the description of this invention and to distinguish each step, and therefore should not be construed as a limitation of this invention.

[0038] To address the shortcomings of two beam imaging methods that require high-power levels of pulsed lasers or high-power continuous lasers for the shutdown (suppression) process, resulting in optical damage and photobleaching of optical data storage materials, this invention proposes a single-beam super-resolution optical data storage device, comprising: a receiving unit, a continuous-wave laser, a time wavefront multiplexer, a read / write device, and an optical data storage unit.

[0039] The receiving unit receives read and write commands;

[0040] When a write command is received, the data to be written is converted into an optical signal, which is then emitted by a continuous wave laser and incident on a time wavefront multiplexer.

[0041] A time wavefront multiplexer is used to modulate an incident continuous wave laser beam into an excitation pulse and a suppression pulse, which are then sequentially switched and incident on the read / write device.

[0042] The read / write device uses a time wavefront multiplexer to modulate a continuous wave laser beam into excitation and suppression pulses. During a write operation, short excitation pulses and long suppression pulses are sequentially switched to form a write spot, which is used to perform photolithography on the optical data storage unit to achieve the write operation. During a read operation, short excitation pulses and long suppression pulses are sequentially switched to form a read spot, which is used to scan the optical data storage unit and read the data in the optical data storage unit to achieve the read operation.

[0043] The optical data storage unit is made of a material with triplet properties.

[0044] A single beam is used, employing a time-multiplexed continuous wave (CW) beam wavefront. Time modulation is performed between short-duration (excitation) and long-duration (suppression) beams, and wavefront modulation is performed between excitation and suppression pulses to form a high-resolution write spot for photolithography of the optical data storage unit (ODS). A high-resolution read spot is formed to scan the ODS for reading. In this embodiment, the pulse length can be controlled by turning the optical data storage unit on and off, avoiding the use of pulsed lasers or high-power continuous lasers for high-power shutdown, which could lead to optical damage and photobleaching of the optical data storage material.

[0045] In this embodiment, the principle of the time-suppression process is based on the interaction mechanism between different energy states of the fluorophore or nanomaterial and metastable dark states or dark states (such as the triplet state of organic dyes). Consider the general case of a three-level system with a ground state S0, an excited state S1, and a dark state S2. The excited state S1 has two energy transfer pathways. See [reference needed] Figure 2aAs shown, when a short pulse is incident on the sample, electrons in the ground state S0 are excited to the excited state S1 by the laser, and then transfer from the excited state S1 back to the ground state S0 to emit light; see reference Figure 2b As shown, when a long pulse is incident on the sample, electrons in the ground state S0 are excited to the excited state S1 by the laser. Electrons in the excited state S1 can transfer to the dark state S2 through a crossover process. Electrons in the dark state cannot emit light or photons of different energies. (See also...) Figures 3a-3b As shown, when the short pulse is fixed at 500 nm, the fluorescence intensity of the long pulse is suppressed as the pulse peak energy increases, demonstrating the turn-off capability. The effect of the short pulse is weakened, the full width at half maximum (FWHM) of the fluorescence decreases, the effective spot size shrinks, and the resolution is improved.

[0046] This principle can be demonstrated using color-converting nanoparticles that exhibit a time-suppression process caused by the crossover of intermediate states and time modulation. Simulation results show that the resolution of the optical data storage unit (ODS) reaches 25 nm with a power loss of 40.0 mW.

[0047] In practical applications, the optical data storage unit of this embodiment is composed of a transparent body and a triplet material. The transparent body can be an organic polymer material, an organic-inorganic composite material, or an inorganic transparent material. The doping ratio of the material in the optical data storage unit of this embodiment can range from 0.01% to 20%. The specific preparation method can be sol-gel method, thermal evaporation method, magnetron sputtering method, etc.

[0048] This embodiment uses a time-wavefront multiplexer to switch between long and short pulses from a light source. Optical resolution is improved by adjusting the long pulse in conjunction with wavefront modulation, and by adjusting the short pulse in conjunction with wavefront modulation. In this embodiment, the long pulse is a Gaussian-distributed light pulse for excitation, and the short pulse is a donut-distributed light pulse for suppression. Further, as... Figure 1 The time wavefront multiplexer of this embodiment includes an acousto-optic modulator 2, a polarizer 3, an electro-optic modulator 4, a first polarization beamsplitter 6, a second polarization beamsplitter 10, a first reflector 7, a spiral phase plate 8, and a second reflector 9.

[0049] A continuous wave laser 1 emits a laser beam and is sequentially arranged with an acousto-optic modulator 2, a polarizer 3, an electro-optic modulator 4, and a first polarization beam splitter 6. A beam of light split from the first polarization beam splitter 6 is incident on a first reflecting mirror 7. The light reflected from the first reflecting mirror 7 is incident on a spiral phase plate 8. The light emitted from the spiral phase plate 8 is incident on a second reflecting mirror 9. The light reflected from the second reflecting mirror 9 is incident on a second polarization beam splitter 10. A beam of light split from the second polarization beam splitter 10 is either an excitation pulse or a suppression pulse.

[0050] In this embodiment, the continuous wave laser generates polarization-modulated light through electro-optic modulation, and the polarization-modulated light is used to generate time-wavefront multiplexed light through polarization beam splitting and spiral phase plate.

[0051] Furthermore, the time wavefront multiplexer in this embodiment also includes a function generator for driving the acousto-optic modulator 2 and the electro-optic modulator 4.

[0052] The read / write device of this embodiment includes a third reflecting mirror 11, a photodetector 13, a quarter-wave plate 12, and an imaging objective lens 14. The excitation and suppression light pulses split by the second polarization beam splitter 10 are transmitted sequentially through the third reflecting mirror 11 and the quarter-wave plate 12 before being incident on the imaging objective lens 14. Light emitted from the optical data storage unit is incident on the third reflecting mirror 11 after passing through the imaging objective lens 14 and the quarter-wave plate 12, and then reflected by the third reflecting mirror 11 before being incident on the photodetector 13. The photodetector 13 in this embodiment can be implemented using a single-photon avalanche diode.

[0053] In this embodiment, the switching period of the wavefront multiplexer can be from 100 Hz to 1 MHz, the pulse length can be from 1 ms to 1 ps, and the pulse interval can be from 100 ms to 10 ps.

[0054] This embodiment also provides a single-beam super-resolution optical data storage method, including the following steps:

[0055] A1. Receive the write command, convert the data to be written into an optical signal, emit a continuous wave laser beam using a continuous wave laser based on the optical signal, modulate the continuous wave laser beam into excitation and suppression pulses using a time wavefront multiplexer, and use short-duration excitation and long-duration suppression pulses to sequentially switch incident light to form a write spot, perform photolithography on the optical data storage unit, and realize the write operation.

[0056] A2. Receive the read command, emit a continuous wave laser beam using a continuous wave laser, modulate the continuous wave laser beam into excitation light pulses and suppression light pulses using a time wavefront multiplexer, and use short-duration excitation light pulses and long-duration suppression light pulses to sequentially switch incident light to form a read spot, scan the optical data storage unit, realize the reading of data from the optical data storage unit, and complete the read operation.

[0057] The optical data storage unit is made of a material with triplet properties.

[0058] In this embodiment, the switching period of the excitation light pulse and the suppression light pulse ranges from 100Hz to 1MHz, the pulse length ranges from 1ms to 1ps, and the pulse interval ranges from 100ms to 10ps.

[0059] In this embodiment, the optical data storage unit achieves time modulation of the excitation and suppression light pulses by turning the optical data storage unit on and off.

[0060] The method of this embodiment uses a single beam and utilizes the wavefront of a time-multiplexed continuous wave (CW) beam to perform time modulation between short time (excitation) and long time (suppression), and wavefront modulation between excitation and suppression pulses to form a high-resolution write spot for photolithography to write to the optical data storage unit (ODS), and to form a high-resolution read spot for scanning the ODS to read.

[0061] The principle of time-suppression is based on the interaction mechanism between different energy states of fluorophores or nanomaterials and metastable dark or dark states (such as the triplet state of organic dyes). Consider the general case of a three-level system with a ground state S0, an excited state S1, and a dark state S2. The excited state S1 has two energy transfer pathways. See [reference needed]. Figure 2a As shown, when a short pulse is incident on the sample, electrons in the ground state S0 are excited to the excited state S1 by the laser, and then transfer from the excited state S1 back to the ground state S0 to emit light; see reference Figure 2b As shown, when a long pulse is incident on the sample, electrons in the ground state S0 are excited to the excited state S1 by the laser. Electrons in the excited state S1 can transfer to the dark state S2 through a crossover process. Electrons in the dark state cannot emit light or photons of different energies. (See also...) Figures 3a-3b As shown, when the short pulse is fixed at 500 nm, the fluorescence intensity of the long pulse is suppressed as the pulse peak energy increases, which reflects the turn-off capability. The effect of the short pulse is weakened, the full width at half maximum of the fluorescence peak decreases, the effective spot size is reduced, and the resolution is improved.

[0062] This embodiment employs a time-wavefront multiplexer to switch between long and short pulses from a light source. Optical resolution is improved by adjusting the long pulse in conjunction with wavefront modulation, and by adjusting the short pulse in conjunction with wavefront modulation. In this embodiment, the long pulse is a Gaussian-distributed light pulse for excitation, and the short pulse is a donut-distributed light pulse for suppression. The pulse length in this embodiment is controlled by turning the optical data storage unit on and off, avoiding the use of high-power pulsed lasers or high-power continuous lasers for shutdown, which could lead to optical damage and photobleaching of the optical data storage material.

[0063] In this embodiment, the read / write resolution range of the optical data storage unit (ODS) can be 25-250nm, while the smallest spot size in existing optical storage units is 200nm.

[0064] The device embodiments described above are merely illustrative. The units described as separate components may or may not be physically separate, and the components shown as units may or may not be physical units; that is, they may be located in one place or distributed across at least two network units. Some or all of the modules can be selected to achieve the purpose of the embodiments of this application, depending on actual needs. Those skilled in the art can understand and implement this without any inventive effort.

[0065] Through the above description of the embodiments, those skilled in the art can clearly understand that each embodiment can be implemented using software and a general-purpose hardware platform, or of course, using hardware. Those skilled in the art will understand that all or part of the processes in the above embodiments can be implemented by a computer program instructing related hardware. The program can be stored in a computer-readable storage medium, and when executed, it can include the processes of the embodiments of the above methods. The storage medium can be a magnetic disk, optical disk, read-only memory (ROM), or random access memory (RAM), etc.

[0066] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this application, and are not intended to limit them. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some or all of the technical features therein. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of this application.

Claims

1. A single-beam super-resolution optical data storage device, characterized in that, include: The receiving unit is used to receive read and write commands; A continuous wave laser is used to emit a continuous wave laser beam according to read and write instructions, and then direct it to a time wavefront multiplexer. A time wavefront multiplexer is used to modulate an incident continuous wave laser beam into an excitation pulse and a suppression pulse, which are then sequentially switched and incident on the read / write device. The read / write device uses a time wavefront multiplexer to modulate a continuous-wave laser beam into excitation and suppression pulses. During writing, short excitation pulses and long suppression pulses are sequentially switched to form a write spot, which performs photolithography on the optical data storage unit to achieve the write operation. During reading, short excitation pulses and long suppression pulses are sequentially switched to form a read spot, which scans the optical data storage unit to read the data in the optical data storage unit to achieve the read operation. The optical data storage unit is made of a material with triplet properties; The time wavefront multiplexer includes an acousto-optic modulator, a polarizer, an electro-optic modulator, a first polarization beamsplitter, a second polarization beamsplitter, a first reflector, a spiral phase plate, and a second reflector. In the transmission direction of the laser beam emitted by the continuous wave laser, an acousto-optic modulator, a polarizer, an electro-optic modulator, and a first polarization beam splitter are arranged sequentially. A beam of light split from the first polarization beam splitter is incident on a first reflecting mirror. The light reflected by the first reflecting mirror is incident on a spiral phase plate. The light emitted from the spiral phase plate is incident on a second reflecting mirror. The light reflected by the second reflecting mirror is incident on a second polarization beam splitter. A beam of light split from the second polarization beam splitter is either an excitation light pulse or a suppression light pulse.

2. The single-beam super-resolution optical data storage device according to claim 1, characterized in that, The excitation light pulse is a Gaussian distributed pulse.

3. The single-beam super-resolution optical data storage device according to claim 1, characterized in that, The suppression light pulse is a donut-shaped pulse.

4. The single-beam super-resolution optical data storage device according to claim 1, characterized in that, The time wavefront multiplexer also includes a function generator for driving the acousto-optic modulator and the electro-optic modulator.

5. The single-beam super-resolution optical data storage device according to claim 1, characterized in that, The reading and writing device includes a third reflecting mirror, a photodetector, a quarter-wave plate, and an imaging objective lens; The excitation and suppression light pulses split by the second polarization beam splitter are transmitted sequentially through the third mirror and incident on the imaging objective lens through the quarter-wave plate; The light emitted from the optical data storage unit passes through the imaging objective lens and a quarter-wave plate and is incident on the third reflecting mirror. After being reflected by the third reflecting mirror, it is then incident on the photodetector.

6. The single-beam super-resolution optical data storage device according to claim 5, characterized in that, The photodetector is a single-photon avalanche diode.

7. A single-beam super-resolution optical data storage method applied to the single-beam super-resolution optical data storage device according to claims 1-6, characterized in that, include: Upon receiving a write command, the data to be written is converted into an optical signal. Based on the optical signal, a continuous wave laser beam is emitted using a continuous wave laser. A time wavefront multiplexer is used to modulate the continuous wave laser beam into excitation and suppression pulses. Short excitation pulses and long suppression pulses are sequentially switched to form a write spot, which is used to perform photolithography on the optical data storage unit to realize the write operation. Upon receiving a read command, a continuous-wave laser beam is emitted using a continuous-wave laser. A time-wavefront multiplexer modulates the continuous-wave laser beam into excitation and suppression pulses. Short-duration excitation pulses and long-duration suppression pulses are sequentially switched to form a read spot, which scans the optical data storage unit to read the data from the optical data storage unit and complete the read operation. The optical data storage unit is made of a material with triplet properties.

8. The single-beam super-resolution optical data storage method according to claim 7, characterized in that, The switching period of the excitation and suppression light pulses ranges from 100Hz to 1MHz, the pulse length ranges from 1ms to 1ps, and the pulse interval ranges from 100ms to 10ps.

9. The single-beam super-resolution optical data storage method according to claim 7, characterized in that, The optical data storage unit achieves time modulation of excitation and suppression light pulses by turning the optical data storage unit on and off.

Citation Information

Patent Citations

  • Single-light-source super-resolution optical storage optical system

    CN114280802A

  • Method and system for optical data storage

    US20170025143A1