CN215493090U - Terahertz system - Google Patents

Terahertz system Download PDF

Info

Publication number
CN215493090U
CN215493090U CN202120386167.1U CN202120386167U CN215493090U CN 215493090 U CN215493090 U CN 215493090U CN 202120386167 U CN202120386167 U CN 202120386167U CN 215493090 U CN215493090 U CN 215493090U
Authority
CN
China
Prior art keywords
terahertz
lens
sample holder
sample
waves
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Active
Application number
CN202120386167.1U
Other languages
Chinese (zh)
Inventor
周铭
孙丽
严丽平
刘扬
徐菲
严中亮
虞斌
施杰
吴玫晓
杨旻蔚
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Tera Aurora Electro Optics Technology Co ltd
Shanghai Academy of Environmental Sciences
Original Assignee
Tera Aurora Electro Optics Technology Co ltd
Shanghai Academy of Environmental Sciences
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Tera Aurora Electro Optics Technology Co ltd, Shanghai Academy of Environmental Sciences filed Critical Tera Aurora Electro Optics Technology Co ltd
Priority to CN202120386167.1U priority Critical patent/CN215493090U/en
Application granted granted Critical
Publication of CN215493090U publication Critical patent/CN215493090U/en
Active legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Images

Landscapes

  • Investigating Or Analysing Materials By Optical Means (AREA)

Abstract

The utility model provides a terahertz system, comprising: the terahertz transmission device comprises an annular guide rail, a terahertz emission lens, a sample seat support, a two-dimensional scanning table and a terahertz receiving lens; the annular guide rail is provided with a first sliding block and a second sliding block; the first and second sliding blocks slide along the annular guide rail; the terahertz transmitting lens is rotatably arranged on the first sliding block, and the terahertz receiving lens is rotatably arranged on the second sliding block; one end of the sample holder support is connected with the sample holder, and the other end of the sample holder support is connected with the two-dimensional scanning platform, so that the two-dimensional scanning platform drives the sample holder to perform two-dimensional motion, and the sample holder performs two-dimensional motion relative to the terahertz emission lens and the terahertz receiving lens; the terahertz transmitting lens transmits terahertz waves so that the terahertz waves are reflected or transmitted by a sample placed on the sample seat, and the terahertz waves carrying the sample information are received by the terahertz receiving lens. The terahertz system is used for simultaneously switching different detection modes and carrying out two-dimensional scanning on a sample.

Description

Terahertz system
Technical Field
The utility model relates to the technical field of terahertz, in particular to a terahertz system.
Background
At present, the terahertz time-domain spectroscopy (THz-TDS) and the terahertz attenuated total reflection time-domain spectroscopy (THz-ATR-TDS) are mainly used for substance detection and analysis by utilizing the terahertz spectroscopy, and in the terahertz time-domain spectroscopy, the detection mode is mainly divided into a transmission mode and a reflection mode; in the terahertz attenuated total reflection time-domain spectroscopy technology, the detection mode is mainly divided into a focusing light ATR mode and a parallel light ATR mode, four probes with different functions can be formed aiming at the four modes, and probes in the market are basically only provided with a single mode function or two modes and integrated, so that the application range is limited. The utility model integrates the four modes into a whole, integrates the scanning imaging function, and can meet most detection application requirements in the market.
Therefore, it is desirable to be able to solve the problem of how to simultaneously accommodate multiple terahertz detection modes.
SUMMERY OF THE UTILITY MODEL
In view of the above-mentioned shortcomings of the prior art, the present invention aims to provide a terahertz system for solving the problem of how to simultaneously accommodate multiple terahertz detection modes in the prior art.
To achieve the above and other related objects, the present invention provides a terahertz system, including: the terahertz transmission device comprises an annular guide rail, a terahertz emission lens, a sample seat support, a two-dimensional scanning table and a terahertz receiving lens; the annular guide rail is provided with a first sliding block and a second sliding block; the first sliding block and the second sliding block slide along the annular guide rail; the terahertz transmitting lens is rotatably arranged on the first sliding block, and the terahertz receiving lens is rotatably arranged on the second sliding block; one end of the sample holder support is connected with the sample holder, and the other end of the sample holder support is connected with the two-dimensional scanning platform, so that the two-dimensional scanning platform drives the sample holder to perform two-dimensional motion, and the sample holder performs two-dimensional motion relative to the terahertz emission lens and the terahertz receiving lens; the terahertz transmitting lens emits terahertz waves so that a sample placed on the sample holder reflects or transmits the terahertz waves, and the terahertz waves carrying sample information are received by the terahertz receiving lens.
As described above, the terahertz system of the present invention has the following beneficial effects: and simultaneously, different detection modes can be switched to perform two-dimensional scanning on the sample.
Drawings
FIG. 1 is a schematic structural diagram of a terahertz system according to an embodiment of the utility model;
FIG. 2 is a schematic diagram of a THz-ATR-TDS parallel light ATR mode of the terahertz system according to an embodiment of the present invention;
fig. 3 is a schematic diagram illustrating a structure of a THz-ATR-TDS parallel light ATR mode optical path in an embodiment of the terahertz system of the present invention;
FIG. 4 is a schematic diagram of a THz-ATR-TDS focusing light ATR mode of the terahertz system according to an embodiment of the present invention;
FIG. 5 is a schematic diagram of the structure of the THz-ATR-TDS focusing light ATR mode optical path in one embodiment of the terahertz system of the present invention;
FIG. 6 is a schematic diagram of a THz-TDS transmission mode of the terahertz system in one embodiment of the present invention;
FIG. 7 is a schematic diagram of a THz-TDS transmission mode optical path in an embodiment of the terahertz system of the present invention;
FIG. 8 is a schematic diagram of the THz-TDS reflection mode of the terahertz system according to an embodiment of the present invention;
fig. 9 is a schematic structural diagram of a THz-TDS reflective mode optical path in an embodiment of the terahertz system of the present invention.
Description of the element reference numerals
11 circular guide rail
12 terahertz emission lens
121 terahertz transmitting terminal
122 first reflector
123 first transmission mirror
13 sample holder
14 sample holder support
15 two-dimensional scanning table
16 terahertz receiving lens
161 second transmission mirror
162 second reflector
163 terahertz receiving end
17 trapezoidal prism
18 samples
Detailed Description
The embodiments of the present invention are described below with reference to specific embodiments, and other advantages and effects of the present invention will be easily understood by those skilled in the art from the disclosure of the present specification. The utility model is capable of other and different embodiments and of being practiced or of being carried out in various ways, and its several details are capable of modification in various respects, all without departing from the spirit and scope of the present invention. It is to be noted that the features in the following embodiments and examples may be combined with each other without conflict.
It should be noted that the drawings provided in the following embodiments are only for illustrating the basic idea of the present invention, so that the components related to the present invention are only shown in the drawings rather than drawn according to the number, shape and size of the components in actual implementation, the type, quantity and proportion of the components in actual implementation can be changed freely, and the layout of the components can be more complicated.
The terahertz system is used for simultaneously providing the terahertz which can be switched to different detection modes and carrying out two-dimensional scanning on a sample.
As shown in fig. 1, in an embodiment, the terahertz system of the present invention includes: the terahertz transmission device comprises a ring-shaped guide rail 11, a terahertz transmission lens 12, a sample holder 13, a sample holder support 14, a two-dimensional scanning platform 15 and a terahertz receiving lens 16. A first sliding block and a second sliding block are arranged on the annular guide rail 11; the first and second sliders slide along the endless guide rail 11; the terahertz emission lens 12 is rotatably arranged on the first slide block, and the terahertz receiving lens 16 is rotatably arranged on the second slide block; one end of the sample holder support 14 is connected with the sample holder 13, and the other end is connected with the two-dimensional scanning stage 15, so that the two-dimensional scanning stage 15 drives the sample holder 13 to perform two-dimensional motion, so that the sample holder 13 performs two-dimensional motion relative to the terahertz emission lens 12 and the terahertz receiving lens 16; the terahertz emission lens 12 emits terahertz waves so that the terahertz waves are reflected or transmitted by a sample placed on the sample holder 13, so that the terahertz waves carrying sample information are received by the terahertz reception lens 16. The two-dimensional scanning platform 15 is controlled to drive the sample holder 13 to do two-dimensional linear motion, so that the sample placed in the sample holder 13 does two-dimensional motion relative to the terahertz transmitting lens 12 and the terahertz receiving lens 16, and the function of scanning the sample by the terahertz transmitting lens 12 and the terahertz receiving lens 16 can be realized. Specifically, the two-dimensional motion refers to motion in the x-axis direction and in the direction perpendicular to the plane of the x-axis and the y-axis.
Specifically, as shown in fig. 2, in an embodiment, the terahertz system of the present invention includes: the terahertz emission lens 12 includes: the terahertz wave detector comprises a first shell, a terahertz wave transmitting end 121, a first reflector 122 and a light outlet; the terahertz transmitting end 121 and the first reflector 122 are arranged in the first shell; the terahertz transmitting end 121 is used for generating terahertz waves; the first reflector 122 is configured to reflect the terahertz waves to the light outlet. The terahertz receiving lens 16 includes: the second shell, the light inlet, the second reflector 162 and the terahertz receiving end 163; the second mirror 162 and the terahertz receiving end 163 are arranged in the second shell; the second mirror 162 is configured to reflect the terahertz waves coming from the light inlet to the terahertz receiving end 163. The specific light path diagram is shown in fig. 3. The terahertz emission end 121 and the first reflector 122 are arranged in a first shell; generating a terahertz wave based on the terahertz emitting end 121; the terahertz waves are reflected to a light outlet based on the first reflecting mirror 122. Thus, the terahertz waves are incident on the sample, and the sample 8 placed on the sample holder 13 reflects the terahertz waves, so that the terahertz waves carrying the sample information are received by the terahertz receiving lens 16. Disposing the second mirror 162 and the terahertz receiving end 163 within the second housing; the terahertz waves coming from the light inlet are reflected to the terahertz receiving end 163 by the second mirror 162. The first mirror 122 and the second mirror 162 are off-axis parabolic mirrors. Further comprising placing a trapezoidal prism 17 on the sample holder. Thus, a THz-ATR-TDS parallel light ATR mode optical path is formed.
Specifically, the terahertz emission lens 12 further includes: a first transmission mirror 123; the first transmission mirror 123 is detachably disposed at the light outlet, and is configured to focus the terahertz waves to the sample holder. A second transmission mirror 161; the second transmission mirror 161 is detachably disposed at the light inlet, and is configured to collimate the terahertz wave to the second reflection mirror 162.
Specifically, as shown in fig. 4, in an embodiment, the terahertz system of the present invention includes: the terahertz emission lens 12 further includes: a first transmission mirror 123; the first transmission mirror 123 is detachably disposed at the light outlet, and is configured to focus the terahertz waves to the sample holder. A second transmission mirror 161; the second transmission mirror 161 is detachably disposed at the light inlet, and is configured to collimate the terahertz wave to the second reflection mirror 162. As shown in fig. 5, the terahertz emission end 121 and the first reflector 122 are disposed in a first housing; generating a terahertz wave based on the terahertz emitting end 121; the terahertz waves are reflected to a light outlet based on the first reflecting mirror 122. The first transmission mirror 123 is detachably disposed at the light outlet, and is configured to focus the terahertz waves to the sample holder. Thereby, the terahertz wave is incident on the sample. The terahertz wave is reflected by the sample placed on the sample holder 13, so that the terahertz wave carrying the sample information is received by the terahertz receiving lens 16. The second transmission mirror 161 is detachably disposed at the light inlet, and is used for collimating the terahertz waves to the second reflection mirror 162. Disposing the second mirror 162 and the terahertz receiving end 163 within the second housing; the terahertz waves coming from the light inlet are reflected to the terahertz receiving end 163 by the second mirror 162. The first mirror 122 and the second mirror 162 are off-axis parabolic mirrors. Further comprising placing a trapezoidal prism 17 on the sample holder. Thus, an ATR mode optical path of THz-ATR-TDS focusing light is formed.
Specifically, as shown in fig. 6, in an embodiment, the terahertz system of the present invention includes: the terahertz emission lens 12 further includes: a first transmission mirror 123; the first transmission mirror 123 is detachably disposed at the light outlet, and is configured to focus the terahertz waves to the sample holder. A second transmission mirror 161; the second transmission mirror 161 is detachably disposed at the light inlet, and is configured to collimate the terahertz wave to the second reflection mirror 162. As shown in fig. 7, the terahertz emission end 121 and the first reflector 122 are disposed in a first housing; generating a terahertz wave based on the terahertz emitting end 121; the terahertz waves are reflected to a light outlet based on the first reflecting mirror 122. The first transmission mirror 123 is detachably disposed at the light outlet, and is configured to focus the terahertz waves to the sample holder. The terahertz emission lens 12 is adjusted so that the terahertz waves coming out of the terahertz emission lens 12 can penetrate through the sample. The terahertz wave is transmitted by the sample placed on the sample holder 13, so that the terahertz wave carrying the sample information is received by the terahertz receiving lens 16. The second transmission mirror 161 is detachably disposed at the light inlet, and is used for collimating the terahertz waves to the second reflection mirror 162. Disposing the second mirror 162 and the terahertz receiving end 163 within the second housing; the terahertz waves coming from the light inlet are reflected to the terahertz receiving end 163 by the second mirror 162. The first mirror 122 and the second mirror 162 are off-axis parabolic mirrors. The sample is capable of transmitting terahertz waves, so that a THz-TDS transmission mode optical path is formed.
Specifically, as shown in fig. 8, in an embodiment, the terahertz system of the present invention includes: a first transmission mirror 123; the first transmission mirror 123 is detachably disposed at the light outlet, and is configured to focus the terahertz waves to the sample holder. A second transmission mirror 161; the second transmission mirror 161 is detachably disposed at the light inlet, and is configured to collimate the terahertz wave to the second reflection mirror 162. As shown in fig. 9, the terahertz emission end 121 and the first reflector 122 are disposed in a first housing; generating a terahertz wave based on the terahertz emitting end 121; the terahertz waves are reflected to a light outlet based on the first reflecting mirror 122. The first transmission mirror 123 is detachably disposed at the light outlet, and is configured to focus the terahertz waves to the sample holder. The terahertz emission lens 12 is adjusted so that the sample reflects the terahertz waves coming out of the terahertz emission lens 12. The terahertz wave is reflected by the sample placed on the sample holder 13, so that the terahertz wave carrying the sample information is received by the terahertz receiving lens 16. The second transmission mirror 161 is detachably disposed at the light inlet, and is used for collimating the terahertz waves to the second reflection mirror 162. Disposing the second mirror 162 and the terahertz receiving end 163 within the second housing; the terahertz waves coming from the light inlet are reflected to the terahertz receiving end 163 by the second mirror 162. The first mirror 122 and the second mirror 162 are off-axis parabolic mirrors. The sample is capable of reflecting terahertz waves, so that a THz-TDS reflection mode light path is formed.
In summary, the terahertz system of the present invention is used for simultaneously providing a switching mechanism capable of switching different detection modes to perform two-dimensional scanning on a sample. Therefore, the utility model effectively overcomes various defects in the prior art and has high industrial utilization value.
The foregoing embodiments are merely illustrative of the principles and utilities of the present invention and are not intended to limit the utility model. Any person skilled in the art can modify or change the above-mentioned embodiments without departing from the spirit and scope of the present invention. Accordingly, it is intended that all equivalent modifications or changes which can be made by those skilled in the art without departing from the spirit and technical spirit of the present invention be covered by the claims of the present invention.

Claims (5)

1. A terahertz system, characterized in that the system comprises: the terahertz transmission device comprises an annular guide rail, a terahertz emission lens, a sample seat support, a two-dimensional scanning table and a terahertz receiving lens;
the annular guide rail is provided with a first sliding block and a second sliding block; the first sliding block and the second sliding block slide along the annular guide rail;
the terahertz transmitting lens is rotatably arranged on the first sliding block, and the terahertz receiving lens is rotatably arranged on the second sliding block;
one end of the sample holder support is connected with the sample holder, and the other end of the sample holder support is connected with the two-dimensional scanning platform, so that the two-dimensional scanning platform drives the sample holder to perform two-dimensional motion, and the sample holder performs two-dimensional motion relative to the terahertz emission lens and the terahertz receiving lens;
the terahertz transmitting lens emits terahertz waves so that a sample placed on the sample holder reflects or transmits the terahertz waves, and the terahertz waves carrying sample information are received by the terahertz receiving lens.
2. The terahertz system of claim 1, wherein: the terahertz emission lens includes: the terahertz wave detector comprises a first shell, a terahertz transmitting end, a first reflector and a light outlet;
the terahertz transmitting end and the first reflector are arranged in the first shell;
the terahertz transmitting end is used for generating terahertz waves;
the first reflecting mirror is used for reflecting the terahertz waves to the light outlet.
3. The terahertz system of claim 2, wherein: the terahertz emission lens further comprises: a first transmission mirror;
the first transmission mirror is detachably arranged at the light outlet and used for focusing the terahertz waves to the sample holder.
4. The terahertz system of claim 1, wherein: the terahertz receiving lens includes: the terahertz wave detector comprises a second shell, a light inlet, a second reflector and a terahertz receiving end;
the second reflector and the terahertz receiving end are arranged in the second shell;
the second reflector is used for reflecting the terahertz waves coming from the light inlet to the terahertz receiving end.
5. The terahertz system of claim 4, wherein: the terahertz receiving lens further comprises: a second transmission mirror; the second transmission mirror is detachably arranged at the light inlet and used for collimating the terahertz waves to the second reflection mirror.
CN202120386167.1U 2021-02-19 2021-02-19 Terahertz system Active CN215493090U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN202120386167.1U CN215493090U (en) 2021-02-19 2021-02-19 Terahertz system

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202120386167.1U CN215493090U (en) 2021-02-19 2021-02-19 Terahertz system

Publications (1)

Publication Number Publication Date
CN215493090U true CN215493090U (en) 2022-01-11

Family

ID=79771065

Family Applications (1)

Application Number Title Priority Date Filing Date
CN202120386167.1U Active CN215493090U (en) 2021-02-19 2021-02-19 Terahertz system

Country Status (1)

Country Link
CN (1) CN215493090U (en)

Similar Documents

Publication Publication Date Title
US6120166A (en) Light source apparatus for a spectral analyzer
JP2013502692A (en) Concentrator for illumination optics
EP2522982A2 (en) Broad-Range Spectrometer
CN202083627U (en) Optical fiber air DOAS measurement system based on Cassegrain telescope structure
EP3751255A2 (en) Gas detection using differential path length measurement
CN110865043B (en) Terahertz attenuation total reflection imaging device and method based on horizontal scanning mode
CN103782141A (en) Emission and transmission optical spectrometer
EP2382501B1 (en) Combined lens and reflector, and an optical apparatus using the same
CN104568826A (en) Miniature solidified near-infrared spectroscopy based on linear variable filter
CN113848041B (en) Optical performance test system and test method
US6732935B2 (en) Multipurpose lens holder for reading optically encoded indicia
CN208013069U (en) A kind of reflective measuring device of Terahertz
CN112903587A (en) Terahertz system and method
CN102004283B (en) Optical fiber coupling White cavity
CN108535217A (en) optical coherence tomography system
CN115316961A (en) Fluorescent image probe and handheld image detector
CN215493090U (en) Terahertz system
JP2016537683A (en) Condensing optical system
CN101936885B (en) Optical fiber transceiver integrated air differential optical absorption spectroscopy (DOAS) measuring system
CN211426243U (en) Industrial OCT detection device
CN113324954A (en) Prism coupling surface plasmon resonance test system based on spectral imaging
US4810093A (en) Versatile and efficient radiation transmission apparatus and method for spectrometers
CN218974142U (en) Multiband structure light microscopic imaging system
CN211061419U (en) Optical system and detector
CN212321830U (en) Laser radar for remote detection

Legal Events

Date Code Title Description
GR01 Patent grant
GR01 Patent grant