期刊文献+

太赫兹超分辨近场成像方法研究综述 被引量:9

Review on Super-Resolution Near-Field Terahertz Imaging Methods
原文传递
导出
摘要 受衍射极限的限制,传统太赫兹成像分辨率在毫米量级,无法满足目前前沿研究向微纳米尺度发展的主要趋势。高时空分辨率太赫兹成像技术成为当下太赫兹领域最重要的研究热点之一。近场太赫兹成像技术是实验中将太赫兹成像分辨率提升至微纳米量级的重要方法。介绍了近场太赫兹成像技术的基本原理,详述了多种近场太赫兹成像技术的发展历程与技术路线,从时空分辨能力、频谱分辨能力、成像质量、成像信噪比和适用场景等多个角度分析并总结了各种近场太赫兹成像技术的优势和不足。最后,讨论并展望了太赫兹超分辨成像未来的发展趋势。 Significance The unique physical properties of terahertz(THz)waves,such as their low photon energy,characteristic spectra,and penetration,provide THz technology with essential application value in basic science and applied science.In biomedical science,traditional THz imaging techniques have been used to detect neural tissue responses,water content distribution in tissues,and bone tissue defects.However,the traditional THz imaging techniques can not satisfy the requirements of single-cell imaging and molecular-level pathological analysis as their spatial resolution is low.In material research,traditional THz imaging techniques have been employed to study the optoelectronic responses of twodimensional materials,two-dimensional material devices,and quantum well devices.However,the traditional THz imaging techniques are insufficient in detecting the carrier's distribution and electron transportation since the wavelength range of the THz band is 30-3000μm.Moreover,due to the diffraction limit,the resolution of the conventional THz imaging is on the millimeter scale(λ1THz=300μm)and thus cannot meet the requirement of the rapid development of scientific research towards the nano-scale.Therefore,THz microscopy with high spatial and temporal resolutions needs to be developed as soon as possible to explore scientific issues at the micro-and nano-scale.Near-field THz imaging techniques are important methods to improve the spatial and temporal resolutions of THz imaging in experiments.The near-field coupling system that captures the information contained in evanescent waves can be used to create super-resolution images.The high-frequency signals in the evanescent waves can be used to reconstruct surface information,including surface structure,carrier concentration,and phase evaluation.Progress Aperture probes and scattering probes are the common techniques used in near-field THz imaging.The basic principle of near-field THz imaging with aperture probes is to create subwavelength THz radiation sources or subwavelength THz detectors with micropores.Physical apertures,dynamic apertures,and spoof surface plasmon polaritons are mature solutions for the fostering of near-field THz imaging systems with aperture probes(Figs.2-7).The spatial resolution and the cut-off frequency are both related to the structure of the aperture probe and the diameter of the aperture.As the cut-off frequency and the coupling efficiency reach the limit,the imaging quality and the spatial resolution of the aperture probe cannot be further improved.Scattering probe microscopy requires a scanning tunnel microscope(STM)and an atomic force microscope(AFM)to provide near-field conditions for the tip-sample system(Figs.8-12).The distance between the tip and the sample is much smaller than the wavelength of the THz signal.When the THz signal is incident on the tip and the sample,the polarization of the tip and the sample generates the near-field scattering signal.Information on the sample surface can be reconstructed as the tip scans the surface of the sample two-dimensionally.Conclusions and Prospects This paper summarizes the basic principle of near-field THz imaging and demonstrates the development history and technical routes of various near-field THz imaging techniques.It analyzes the characteristics of those near-field THz imaging techniques and discusses their temporal and spatial resolutions,spectral resolution,imaging quality,signal-to-noise ratio,and application scenarios.Finally,the paper suggests the future development of superresolution THz imaging.
作者 张泽亮 齐鹏飞 郭兰军 张楠 林列 刘伟伟 Zhang Zeliang;Qi Pengfei;Guo Lanjun;Zhang Nan;Lin Lie;Liu Weiwei(Tianjin Key Laboratory of Micro-Scale Optical Information Science and Technology,Institute of Modern Optics,Nankai University,Tianjin 300350,China)
出处 《光学学报》 EI CAS CSCD 北大核心 2023年第6期1-15,共15页 Acta Optica Sinica
基金 国家自然科学基金(12061131010,12074198) 天津市自然科学基金(20JCYBJCO1040) 中央高校基本科研业务费专项资金(63223052)。
关键词 成像系统 太赫兹技术 超分辨太赫兹成像 太赫兹近场成像 imaging systems terahertz technology super-resolution terahertz imaging near-field terahertz imaging
  • 相关文献

参考文献1

二级参考文献4

共引文献3

同被引文献57

引证文献9

二级引证文献8

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部