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Showing posts with label terahertz chemical microscope. Show all posts
Showing posts with label terahertz chemical microscope. Show all posts
Sunday, February 3, 2019
Abstract-Imaging of Chemical Reactions Using a Terahertz Chemical Microscope
Toshihiko Kiwa , Tatsuki Kamiya , Taiga Morimoto , Kentaro Fujiwara , Yuki Maeno , Yuki Akiwa, Masahiro Iida, Taihei Kuroda, Kenji Sakai, Hidetoshi Nose, Masaki Kobayashi, Keiji Tsukada
https://www.mdpi.com/2304-6732/6/1/10
This study develops a terahertz (THz) chemical microscope (TCM) that visualizes the distribution of chemical reaction on a silicon-based sensing chip. This chip, called the sensing plate, was fabricated by depositing Si thin films on a sapphire substrate and thermally oxidizing the Si film surface. The Si thin film of the sensing plate was irradiated from the substrate side by a femtosecond laser, generating THz pulses that were radiated into free space through the surface field effect of the Si thin film. The surface field responds to chemical reactions on the surface of the sensing plate, changing the amplitude of the THz pulses. This paper first demonstrates the principle and experimental setup of the TCM and performs the imaging and measurement of chemical reactions, including the reactions of bio-related materials
Thursday, June 28, 2018
Okayama University Research: Measuring ion Concentration in Solutions for Clinical and Environmental Research
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| Schematic of the sensing plate when it is illuminated by the femtosecond laser. Inset is the microphotograph of the microsolution wells. (PRNewsfoto/Okayama University) |
https://www.prnewswire.com/news-releases/okayama-university-research-measuring-ion-concentration-in-solutions-for-clinical-and-environmental-research-686667031.html
For clinical and environmental research and monitoring it is important to be able to measure pH concentrations in small-volume solutions. However, conventional systems used to measure the concentration of ions require the use of reference electrodes that end up reducing the volume of the solution, setting a limit on the minimum volume that it is possible to analyze.
Now, Dr. Toshihiko Kiwa and colleagues at the Graduate School of Natural Science and Technology in Okayama University, Japan, demonstrated the use of Terahertz (THz) chemical microscopy to measure the pH of water-based solutions with a volume as small as 16 nL. The results are published in Optics Express. This type of microscope has a sensing plate with patterned micro wells hosting the solution; an ultrafast laser pulse directed on the sensing plate generates a photocurrent with ultrafast modulation that, in turn, emits THz radiation into free space. Because the amplitude of the THz radiation depends on the concentration of ions in the micro wells, this method opens up the possibility of imaging the concentration of ions without the need of using electrodes. This enables the measurement of volumes of solution that would be too small for conventional methods.
The THz chemical microscope, which was developed by this same group in 2007, features a semiconducting (silicon) thin film mounted on a sapphire substrate that acts as the sensing plate. A layer of oxide naturally forms on the silicon film, providing an insulating layer between the silicon surface and the solution. The researchers added a resin on top of the oxide layer and used conventional photolithographic techniques to pattern micro wells in it, obtaining wells with a volume of 16 nL. They also optimized the laser pulses to stabilize the signal, and integrating this method into the microscope is part of the next steps the researchers intend to take.
Thinking about the future directions the team is interested to explore, the author says that "we will attempt the integration for multi-ion sensing and reducing the laser spot size to improve the accuracy of THz chemical microscopy."
About Okayama University
Okayama University is one of the largest comprehensive universities in Japan with roots going back to the Medical Training Place sponsored by the Lord of Okayama and established in 1870. Now with 1,300 faculty and 13,000 students, the University offers courses in specialties ranging from medicine and pharmacy to humanities and physical sciences.
Okayama University is located in the heart of Japan approximately 3 hours west of Tokyo by Shinkansen.
Correspondence to
Associate Professor Toshihiko Kiwa, Ph.D.
Advanced Electro Measurement Technology Laboratory,
Graduate School of Interdisciplinary Science and Engineering
in Health Systems, Okayama University,
3-1-1 Tsushimanaka, Kita-Ku, Okayama 700-8530, Japan
Further information
Okayama University
1-1-1 Tsushima-naka , Kita-ku , Okayama 700-8530, Japan
Public Relations and Information Strategy
E-mail: www-adm@adm.okayama-u.ac.jp
Okayama University
1-1-1 Tsushima-naka , Kita-ku , Okayama 700-8530, Japan
Public Relations and Information Strategy
E-mail: www-adm@adm.okayama-u.ac.jp
Website: http://www.okayama-u.ac.jp/index_e.html
Okayama Univ. e-Bulletin: http://www.okayama-u.ac.jp/user/kouhou/ebulletin/
About Okayama University (YouTube): https://www.youtube.com/watch?v=iDL1coqPRYI
Okayama University Image Movie (YouTube): https://www.youtube.com/watch?v=KU3hOIXS5kk
Reference
Okayama Univ. e-Bulletin: http://www.okayama-u.ac.jp/user/kouhou/ebulletin/
About Okayama University (YouTube): https://www.youtube.com/watch?v=iDL1coqPRYI
Okayama University Image Movie (YouTube): https://www.youtube.com/watch?v=KU3hOIXS5kk
Reference
Toshihiko Kiwa, Tatsuki Kamiya, Taiga Morimoto, Kenji Sakai, And Keiji Tsukada. pH measurements in 16-nL-volume solutions using terahertz chemical microscopy. Optics Express, 26(7), 8232-8238, 2018.
Reference (Okayama Univ. e-Bulletin): Associate Professor Kiwa's team
e-Bulletin Vol.4:Unique terahertz chemical microscope for mapping chemical reactions
e-Bulletin Vol.10:Simple, compact, highly sensitive SQUID based magnetic field measurement sysytem to detection of a very small magnetic signals
e-Bulletin Vol.11:High-performance Terahertz Project kick-off symposium
SOURCE Okayama University
Monday, March 3, 2014
TERAHERTZ IMAGING: Terahertz microscope images chemical reactions
03/03/2014
Using an imaging process they call laser-terahertz emission microscopy (LTEM), researchers at Okayama University (Okayama, Japan) have developed a terahertz chemical microscope (TCM) that images chemical reactions with higher spatial resolution than conventional terahertz imaging methods.1 That is, the TCM spatial resolution is not limited by the wavelength of the terahertz radiation generated, but instead is limited by the much shorter wavelength of the femtosecond laser used to generate the terahertz radiation.
Terahertz sensing
The reactive portion of the TCM consists of thin silicon dioxide (SiO2) and silicon (Si) layers (275 and 170 nm thick, respectively) on a sapphire substrate. When light from a 790-nm-emitting femtosecond laser operated with a 100 fs pulse width and an 82 MHz pulse repetition rate travels through the sapphire substrate and strikes the Si-based films, terahertz radiation with a peak wavelength of approximately 0.3 THz is generated and radiated to a low-temperature-grown gallium arsenide (GaAs) photoconductive antenna sensor that works as the terahertz detector.
The reactive portion of the TCM consists of thin silicon dioxide (SiO2) and silicon (Si) layers (275 and 170 nm thick, respectively) on a sapphire substrate. When light from a 790-nm-emitting femtosecond laser operated with a 100 fs pulse width and an 82 MHz pulse repetition rate travels through the sapphire substrate and strikes the Si-based films, terahertz radiation with a peak wavelength of approximately 0.3 THz is generated and radiated to a low-temperature-grown gallium arsenide (GaAs) photoconductive antenna sensor that works as the terahertz detector.
If a chemical reaction progresses on the 10 mm2 sensing plate above the film, chemical and/or electrical potential shifts at the surface of the plate cause a change in the local field magnitude and a corresponding variation in the amplitude of the generated terahertz pulse. And because the terahertz pulse contains information about the reaction at the precise location of the laser that created the pulse, scanning the laser across the sensing plate produces a map or image of the spatial details of the chemical reaction (see figure).
| A photograph of the terahertz chemical microscope (TCM) sensing plate (a) shows immobilized sensing polymer membranes for sodium (Na+) and potassium (K+) ions. The TCM image (b) clearly indicates when the concentration of sodium ions in the water solution on the sensing plate was changed from 10-4 mol/L to 10-1 mol/L. |
Although the spatial resolution of the TCM is currently about 50 μm, this can be improved by optimizing the aperture of the objective lens that is used to focus the laser onto the sapphire substrate. Currently, a plano-convex lens with a diameter of 25.4 mm and focal length of 60 mm is used, where the spot size of the laser was approximately 3 mm.
Possible reactions
Currently, the TCM system can be used to detect changing concentration levels of ions in solution, or changes in immunoglobulin reactions. The researchers say that the label-free technique is even more sensitive than standardimmunoassays because the TCM process is not dependent on the molecular weight of the sample; for example, they have been able to detect molecules as small as biotin that are difficult to measure using conventional methods.
Currently, the TCM system can be used to detect changing concentration levels of ions in solution, or changes in immunoglobulin reactions. The researchers say that the label-free technique is even more sensitive than standardimmunoassays because the TCM process is not dependent on the molecular weight of the sample; for example, they have been able to detect molecules as small as biotin that are difficult to measure using conventional methods.
“Now, we are working toward realizing a ‘multi-omics’ platform using TCM for a next-generation medical diagnostic system,” says Toshihiko Kiwa, associate professor at Okayama University. Multi-omics (or multiomics) is defined as being applicable to multiple fields of study ending in the phrase ‘omics,’ such as genomics and proteomics. “We already developed the prototype TCM and sensing plates are ready to deliver to researchers in diverse research fields who are interested in screening and/or visualization of chemical or bioreactions,” Kiwa adds.
In addition to exploring TCM applications in medical diagnosis and materials research, the researchers are also developing fuel cells that will be mounted on the sensing chip so that catalytic reactions of their electrodes can be measured.
REFERENCE
1. T. Kiwa et al., “Imaging chemical reactions,” SPIE Biomedical Optics & Medical Imaging online (December 31, 2013).
1. T. Kiwa et al., “Imaging chemical reactions,” SPIE Biomedical Optics & Medical Imaging online (December 31, 2013).
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