Photonics Research, Volume. 9, Issue 9, 1734(2021)
Spectrum-shaped Si-perovskite hybrid photodetectors for hyperspectral bioimaging
[1] D. Bannon. Cubes and slices. Nat. Photonics, 3, 627-629(2009).
[2] G. Lu, B. Fei. Medical hyperspectral imaging: a review. J. Biomed. Opt., 19, 010901(2014).
[3] F. Yesilkoy, E. R. Arvelo, Y. Jahani, M. Liu, A. Tittl, V. Cevher, Y. Kivshar, H. Altug. Ultrasensitive hyperspectral imaging and biodetection enabled by dielectric metasurfaces. Nat. Photonics, 13, 390-396(2019).
[4] L. Gevaux, C. Adnet, P. Seroul, R. Clerc, A. Tremeau, J. L. Perrot, M. Hebert. Three-dimensional maps of human skin properties on full face with shadows using 3-D hyperspectral imaging. J. Biomed. Opt., 24, 066002(2019).
[5] D. T. Dicker, J. Lerner, P. Van Belle, S. F. Barth, D. T. Guerry, M. Herlyn, D. E. Elder, W. S. El-Deiry. Differentiation of normal skin and melanoma using high resolution hyperspectral imaging. Cancer Biol. Ther., 5, 1033-1038(2006).
[6] M. Halicek, H. Fabelo, S. Ortega, G. M. Callico, B. Fei.
[7] H. Akbari, K. Uto, Y. Kosugi, K. Kojima, N. Tanaka. Cancer detection using infrared hyperspectral imaging. Cancer Sci., 102, 852-857(2011).
[8] Z. Liu, H. Wang, Q. Li. Tongue tumor detection in medical hyperspectral images. Sensors, 12, 162-174(2012).
[9] J. Yoon, J. Joseph, D. J. Waterhouse, A. S. Luthman, G. S. D. Gordon, M. Di Pietro, W. Januszewicz, R. C. Fitzgerald, S. E. Bohndiek. A clinically translatable hyperspectral endoscopy (HySE) system for imaging the gastrointestinal tract. Nat. Commun., 10, 1902(2019).
[10] X. Hadoux, F. Hui, J. K. H. Lim, C. L. Masters, A. Pebay, S. Chevalier, J. Ha, S. Loi, C. J. Fowler, C. Rowe, V. L. Villemagne, E. N. Taylor, C. Fluke, J. P. Soucy, F. Lesage, J. P. Sylvestre, P. Rosa-Neto, S. Mathotaarachchi, S. Gauthier, Z. S. Nasreddine, J. D. Arbour, M. A. Rheaume, S. Beaulieu, M. Dirani, C. T. O. Nguyen, B. V. Bui, R. Williamson, J. G. Crowston, P. Van Wijngaarden. Non-invasive
[11] R. L. Greenman, S. Panasyuk, X. Wang, T. E. Lyons, T. Dinh, L. Longoria, J. M. Giurini, J. Freeman, L. Khaodhiar, A. Veves. Early changes in the skin microcirculation and muscle metabolism of the diabetic foot. Lancet, 366, 1711-1717(2005).
[12] M. E. M. Seong, G. Kong, T. Vo-Dinh. Hyperspectral fluorescence imaging for mouse skin tumor detection. ETRI J., 28, 770-776(2006).
[13] D. Yudovsky, A. Nouvong, K. Schomacker, L. Pilon. Assessing diabetic foot ulcer development risk with hyperspectral tissue oximetry. J. Biomed. Opt., 16, 026009(2011).
[14] J. K. Muhammad, S. K. Hamid, Y. Adeel, K. Khurram, A. Abbas. Modern trends in hyperspectral image analysis: a review. IEEE Access, 6, 14118-14129(2018).
[15] I. Amenabar, S. Poly, M. Goikoetxea, W. Nuansing, P. Lasch, R. Hillenbrand. Hyperspectral infrared nanoimaging of organic samples based on Fourier transform infrared nanospectroscopy. Nat. Commun., 8, 14402(2017).
[16] S. Kumar, C. Desmedt, D. Larsimont, C. Sotiriou, E. Goormaghtigh. Change in the microenvironment of breast cancer studied by FTIR imaging. Analyst, 138, 4058-4065(2013).
[17] E. L. Larsen, L. L. Randeberg, E. Olstad, O. A. Haugen, A. Aksnes, L. O. Svaasand. Hyperspectral imaging of atherosclerotic plaques
[18] B. S. Sorg, B. J. Moeller, O. Donovan, Y. Cao, M. W. Dewhirst. Hyperspectral imaging of hemoglobin saturation in tumor microvasculature and tumor hypoxia development. J. Biomed. Opt., 10, 44004(2005).
[19] V. Tuchin. Tissue optics and photonics: light-tissue interaction II. J. Biomed. Photon. Eng., 2, 030201(2016).
[20] K. Mangold, J. A. Shaw, M. Vollmer. The physics of near-infrared photography. Eur. J. Phys., 34, S51-S71(2013).
[21] Y. Liu, J. Zhu, G. Cen, J. Zheng, D. Xie, Z. Zhao, C. Zhao, W. Mai. Valence-state controllable fabrication of Cu2-
[22] Y. Liu, G. Cen, G. Wang, J. Huang, S. Zhou, J. Zheng, Y. Fu, C. Zhao, W. Mai. High performance MoO3−x/Si heterojunction photodetectors with nanoporous pyramid Si arrays for visible light communication application. J. Mater. Chem. C, 7, 917-925(2019).
[23] Y. Zhang, Y. Yu, L. Mi, H. Wang, Z. Zhu, Q. Wu, Y. Zhang, Y. Jiang.
[24] Z. Ji, Y. Liu, W. Li, C. Zhao, W. Mai. Reducing current fluctuation of Cs3Bi2Br9 perovskite photodetectors for diffuse reflection imaging with wide dynamic range. Sci. Bull., 65, 1371-1379(2020).
[25] K. Leng, I. Abdelwahab, I. Verzhbitskiy, M. Telychko, L. Chu, W. Fu, X. Chi, N. Guo, Z. Chen, Z. Chen, C. Zhang, Q. H. Xu, J. Lu, M. Chhowalla, G. Eda, K. P. Loh. Molecularly thin two-dimensional hybrid perovskites with tunable optoelectronic properties due to reversible surface relaxation. Nat. Mater., 17, 908-914(2018).
[26] F. P. G. De Arquer, A. Armin, P. Meredith, E. H. Sargent. Solution-processed semiconductors for next-generation photodetectors. Nat. Rev. Mater., 2, 16100(2017).
[27] F. Li, C. Ma, H. Wang, W. Hu, W. Yu, A. D. Sheikh, T. Wu. Ambipolar solution-processed hybrid perovskite phototransistors. Nat. Commun., 6, 8238(2015).
[28] Q. Chen, J. Wu, X. Ou, B. Huang, J. Almutlaq, A. A. Zhumekenov, X. Guan, S. Han, L. Liang, Z. Yi, J. Li, X. Xie, Y. Wang, Y. Li, D. Fan, D. B. L. Teh, A. H. All, O. F. Mohammed, O. M. Bakr, T. Wu, M. Bettinelli, H. Yang, W. Huang, X. Liu. All-inorganic perovskite nanocrystal scintillators. Nature, 561, 88-93(2018).
[29] L. Dou, Y. M. Yang, J. You, Z. Hong, W. H. Chang, G. Li, Y. Yang. Solution-processed hybrid perovskite photodetectors with high detectivity. Nat. Commun., 5, 5404(2014).
[30] Z. Ji, Y. Liu, W. Mai. Enhancing the photodetection performance of MAPbI3 perovskite photodetectors by a dual functional interfacial layer for color imaging. Opt. Lett., 46, 150-153(2021).
[31] G. Cen, Y. Liu, C. Zhao, G. Wang, Y. Fu, G. Yan, Y. Yuan, C. Su, Z. Zhao, W. Mai. Atomic-layer deposition-assisted double-side interfacial engineering for high-performance flexible and stable CsPbBr3 perovskite photodetectors toward visible light communication applications. Small, 15, 1902135(2019).
[32] Y. Fu, H. Zhu, J. Chen, M. P. Hautzinger, X. Y. Zhu, S. Jin. Metal halide perovskite nanostructures for optoelectronic applications and the study of physical properties. Nat. Rev. Mater., 4, 169-188(2019).
[33] V. V. Belykh, D. R. Yakovlev, M. M. Glazov, P. S. Grigoryev, M. Hussain, J. Rautert, D. N. Dirin, M. V. Kovalenko, M. Bayer. Coherent spin dynamics of electrons and holes in CsPbBr3 perovskite crystals. Nat. Commun., 10, 673(2019).
[34] A. P. Schlaus, M. S. Spencer, K. Miyata, F. Liu, X. Wang, I. Datta, M. Lipson, A. Pan, X. Y. Zhu. How lasing happens in CsPbBr3 perovskite nanowires. Nat. Commun., 10, 265(2019).
[35] A. Manzi, Y. Tong, J. Feucht, E. P. Yao, L. Polavarapu, A. S. Urban, J. Feldmann. Resonantly enhanced multiple exciton generation through below-band-gap multi-photon absorption in perovskite nanocrystals. Nat. Commun., 9, 1518(2018).
[36] Z. Ji, G. Cen, C. Su, Y. Liu, Z. Zhao, C. Zhao, W. Mai. All-inorganic perovskite photodetectors with ultrabroad linear dynamic range for weak-light imaging applications. Adv. Opt. Mater., 8, 2001436(2020).
[37] F. Sahli, J. Werner, B. A. Kamino, M. Bräuninger, R. Monnard, B. Paviet-Salomon, L. Barraud, L. Ding, J. J. D. Leon, D. Sacchetto, G. Cattaneo, M. Despeisse, M. Boccard, S. Nicolay, Q. Jeangros, B. Niesen, C. Ballif. Fully textured monolithic perovskite/silicon tandem solar cells with 25.2% power conversion efficiency. Nat. Mater., 17, 820-826(2018).
[38] T. Leijtens, K. A. Bush, R. Prasanna, M. D. McGehee. Opportunities and challenges for tandem solar cells using metal halide perovskite semiconductors. Nat. Energy, 3, 828-838(2018).
[39] Z. Liang, P. Zeng, P. Liu, C. Zhao, W. Xie, W. Mai. Interface engineering to boost photoresponse performance of self-powered, broad-bandwidth PEDOT:PSS/Si heterojunction photodetector. ACS Appl. Mater. Inter., 8, 19158-19167(2016).
[40] J. P. Thomas, M. A. Rahman, S. Srivastava, J. S. Kang, D. Mcgillivray, M. Abd-Ellah, N. F. Heinig, K. T. Leung. Highly conducting hybrid silver-nanowire-embedded poly(3,4-ethylenedioxythiophene): poly (styrene sulfonate) for high-efficiency planar silicon/organic heterojunction solar cells. ACS Nano, 12, 9495-9503(2018).
[41] R. Shimotsu, T. Takumi, V. Vohra. All solution-processed micro-structured flexible electrodes for low-cost light-emitting pressure sensors fabrication. Sci. Rep., 7, 6921(2017).
[42] C. H. Liu, Y. C. Chang, T. B. Norris, Z. Zhong. Graphene photodetectors with ultra-broadband and high responsivity at room temperature. Nat. Nanotechnol., 9, 273-278(2014).
[43] H. Abbasi, G. Rauter, R. Guzman, P. C. Cattin, A. Zam. Differentiation of femur bone from surrounding soft tissue using laser-induced breakdown spectroscopy as a feedback system for smart laserosteotomy. Proc. SPIE, 10685, 1068519(2018).
[44] Y. Fang, Q. Dong, Y. Shao, Y. Yuan, J. Huang. Highly narrowband perovskite single-crystal photodetectors enabled by surface-charge recombination. Nat. Photonics, 9, 679-686(2015).
Get Citation
Copy Citation Text
Yujin Liu, Zhong Ji, Yaping Li, Hong Jin Fan, Wenjie Mai, "Spectrum-shaped Si-perovskite hybrid photodetectors for hyperspectral bioimaging," Photonics Res. 9, 1734 (2021)
Category: Imaging Systems, Microscopy, and Displays
Received: Sep. 29, 2020
Accepted: Jun. 22, 2021
Published Online: Aug. 20, 2021
The Author Email: Zhong Ji (jizhong@jnu.edu.cn), Wenjie Mai (wenjiemai@email.jnu.edu.cn)