[1] [1] Choi WJ, Yano K, Cha M, Colombari FM, Kim J-Y, Wang Y, Lee SH, Sun K, Kruger JM, de Moura AF, Kotov NA. Chiral phonons in microcrystals and nanofibrils of biomolecules. Nat Photonics. 2022;16(5):366–73. .10.1038/s41566-022-00969-1
[2] [2] Lou J, Jiao YN, Yang RS, Huang YD, Xu X, Zhang L, Ma ZF, Yu Y, Peng WY, Yuan YF, Zhong Y, Li SY, Yan Y, Zhang FL, Liang JG, Du XH, Chang C, Qiu CW. Calibration-free, high-precision, and robust terahertz ultrafast metasurfaces for monitoring gastric cancers. Proceedings of the National Academy of Sciences of the United States of America. 2022;119(43). .
[3] [3] Peng Y, Shi C, Zhu Y, Gu M, Zhuang S. Terahertz spectroscopy in biomedical field: a review on signal-to-noise ratio improvement. PhotoniX. 2020;1(1). .
[4] [4] Zhang C, Yuan Y, Wu K, Wang Y, Zhu S, Shi J, Wang L, Li Q, Zuo X, Fan C, Chang C, Li J. Driving DNA origami assembly with a terahertz wave. Nano Lett. 2021;22(1):468–75. .10.1021/acs.nanolett.1c04369
[6] [6] Niessen KA, Xu M, George DK, Chen MC, Ferré-D’Amaré AR, Snell EH, Cody V, Pace J, Schmidt M, Markelz AG. Protein and RNA dynamical fingerprinting. Nature Communications. 2019;10(1). .
[7] [7] Peng Y, Huang JL, Luo J, Yang ZF, Wang LP, Wu X, Zang XF, Yu C, Gu M, Hu Q, Zhang XC, Zhu YM, Zhuang SL. Three-step one-way model in terahertz biomedical detection. Photonix. 2021;2(1). .
[10] [10] Lee SH, Choe JH, Kim C, Bae S, Kim JS, Park QH, Seo M. Graphene assisted terahertz metamaterials for sensitive bio-sensing. Sensors and Actuators B-Chemical. 2020;310. .
[11] [11] Zhang XT, He LY, Gan X, Huang XC, Du YX, Zhai ZS, Li Z, Zheng YL, Chen XF, Cai YJ, Ao XY. Quasi-Bound States in the Continuum Enhanced Second-Harmonic Generation in Thin-Film Lithium Niobate. Laser & Photonics Reviews. 2022;16(9). .
[14] [14] Zhou CB, Huang LJ, Jin R, Xu L, Li GH, Rahmani M, Chen XS, Lu W, Miroshnichenko AE. Bound States in the Continuum in Asymmetric Dielectric Metasurfaces. Laser & Photonics Reviews. 2023;17(3). .
[15] [15] Zang X, Yao B, Chen L, Xie J, Guo X, Balakin AV, Shkurinov AP, Zhuang S. Metasurfaces for manipulating terahertz waves. Light: Advanced Manufacturing. 2021;2(2). .
[16] [16] Zhu Y, Zang X, Chi H, Zhou Y, Zhu Y, Zhuang S. Metasurfaces designed by a bidirectional deep neural network and iterative algorithm for generating quantitative field distributions. Light: Advanced Manufacturing. 2023;4(2). .
[17] [17] Bai ZY, Liu YS, Kong RR, Nie TX, Sun Y, Li HL, Sun T, Pandey CD, Wang YN, Zhang HY, Song QL, Liu GZ, Kraft M, Zhao WS, Wu XJ, Wen LG. Near-field Terahertz Sensing of HeLa Cells and Pseudomonas Based on Monolithic Integrated Metamaterials with a Spintronic Terahertz Emitter. ACS Appl Mater Interfaces. 2020;12(32):35895–902. .10.1021/acsami.0c08543
[30] [30] Ma ZF, Jiao YA, Zhang CB, Lou J, Zhao PY, Zhang B, Wang YJ, Yu Y, Sun W, Yan Y, Yang XP, Sun L, Wang RD, Chang C, Li XR, Du XH. Identification and quantitative detection of two pathogenic bacteria based on a terahertz metasensor. Nanoscale. 2023;15(2):515–21. .10.1039/d2nr05038b
[31] [31] Huang CC, Liang LJ, Chang PY, Yao HY, Yan X, Zhang YG, Xie YY. Terahertz Liquid Biosensor Based on A Graphene Metasurface for Ultrasensitive Detection with A Quasi-Bound State in the Continuum. Adv Mater. 2023:10. .
[49] [49] Jiao YA, Lou J, Ma ZF, Cong LQ, Xu X, Zhang B, Li DC, Yu Y, Sun W, Yan Y, Hu SD, Liu BY, Huang YD, Sun L, Wang RD, Singh R, Fan YC, Chang C, Du XH. Photoactive terahertz metasurfaces for ultrafast switchable sensing of colorectal cells. Mater Horizons. 2022;9(12):10. .10.1039/d2mh00787h
[52] [52] Asgari M, Riccardi E, Balci O, De Fazio D, Shinde SM, Zhang JC, Mignuzzi S, Koppens FHL, Ferrari AC, Viti L, Vitiello MS. Chip-Scalable, Room-Temperature, Zero-Bias, Graphene-Based Terahertz Detectors with Nanosecond Response Time. ACS Nano. 2021;15(11):17966–76. .10.1021/acsnano.1c06432
[54] [54] Koepfli SM, Baumann M, Koyaz Y, Gadola R, Güngör A, Keller K, Horst Y, Nashashibi S, Schwanninger R, Doderer M, Passerini E, Fedoryshyn Y, Leuthold J. Metamaterial graphene photodetector with bandwidth exceeding 500 gigahertz. Science. 2023;380(6650):1169–74. .10.1126/science.adg8017
[55] [55] Wang ZF, Peng Y, Shi CJ, Wang LP, Chen XH, Wu WW, Wu X, Zhu YM, Zhang JC, Cheng GL, Zhuang SL. Qualitative and quantitative recognition of chiral drugs based on terahertz spectroscopy. Analyst. 2021;146(12):3888–98. .10.1039/d1an00500f
[60] [60] Castilla S, Terrés B, Autore M, Viti L, Li J, Nikitin AY, Vangelidis I, Watanabe K, Taniguchi T, Lidorikis E, Vitiello MS, Hillenbrand R, Tielrooij KJ, Koppen FHL. Fast and Sensitive Terahertz Detection using an Antenna-Integrated Graphene pn Junction. Nano Lett. 2019;19(5):2765–73. .10.1021/acs.nanolett.8b04171
[65] [65] Mousavi SH, Kholmanov I, Alici KB, Purtseladze D, Arju N, Tatar K, Fozdar DY, Suk JW, Hao YF, Khanikaev AB, Ruoff RS, Shvets G. Inductive Tuning of Fano-Resonant Metasurfaces Using Plasmonic Response of Graphene in the Mid-Infrared. Nano Lett. 2013;13(3):1111–7. .10.1021/nl304476b
[66] [66] Wang L, An N, Gong S, Sheng X, Li YW, Yao BC, Yu C, He ZZ, Liu QB, Feng ZH, Otsuji T, Zhang YX. Ultrafast terahertz transparency boosting in graphene meta-cavities. Nanophotonics. 2022;11(21):4899–907. .10.1515/nanoph-2022-0511
[72] [72] Zhang Z, Gao J, Yang MS, Yan X, Lu YY, Wu L, Li JN, Wei DQ, Liu LH, Xie JH, Liang LJ, Yao JQ. Microfluidic integrated metamaterials for active terahertz photonics. Photonics Research. 2019;7(12):1400–6. .10.1364/prj.7.001400
[73] [73] Yan X, Yang MS, Zhang Z, Liang LJ, Wei DQ, Wang M, Zhang MJ, Wang T, Liu LH, Xie JH, Yao JQ. The terahertz electromagnetically induced transparency-like metamaterials for sensitive biosensors in the detection of cancer cells. Biosens Bioelectron. 2019;126:485–92. .10.1016/j.bios.2018.11.014
[74] [74] Afra D, Baron B, Bonadonna G, Curran WJ, Green SB, Hildebrand J, Scott CB, Shapiro W, Thomas D, Trojanowski T, Urtasun R, Walker MD, Burdett S, Parmar MKB, Souhami RL, Stenning SP, Stewart LA, Glioma Meta-analysis Trialists G. Chemotherapy in adult high-grade glioma: a systematic review and meta-analysis of individual patient data from 12 randomised trials. Lancet. 2002;359(9311):1011–8. .10.1016/S0140-6736(02)08091-1
[77] [77] Xie YN, Liu XY, Zhou J, Zhang HF, Lin JY, Chen W, Zhu LG, Meng K, Liu QH, Zhu JF. Enhancing Trace Terahertz Fingerprint Sensing by the Lossy Silicon Metagrating With a Gold Mirror. IEEE Trans Microw Theory Tech. 2023:10. .