Photophysical properties of materials for high-speed photodetection

被引:0
作者
Amin Morteza Najarian
Maral Vafaie
Bin Chen
F. Pelayo García de Arquer
Edward H. Sargent
机构
[1] University of Toronto,The Edward S. Rogers Department of Electrical and Computer Engineering
[2] Northwestern University,Department of Chemistry
[3] ICFO — Institut de Ciències Fotòniques,Department of Electrical and Computer Engineering
[4] The Barcelona Institute of Science and Technology,undefined
[5] Northwestern University,undefined
来源
Nature Reviews Physics | 2024年 / 6卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Fast-response optical sensing across the electromagnetic spectrum is an enabler of quantum systems, 3D machine vision and augmented reality, yet existing technologies are not optimized for infrared sensing. Trade-offs among characteristics such as speed, efficiency, noise, spectral detection range and cost motivate the research community to develop nanostructured sensing materials that provide operation from visible to infrared wavelengths with seamless integration. As efforts are made to advance the combined gain and bandwidth of devices, a clear understanding of physical mechanisms underlying the dynamics of charge carriers, with a particular focus on speed-limiting processes, is of high priority. In this Review, we provide an account of the photophysical attributes of active materials and their impact on optical sensor performance, focusing on the interplay between temporal and peak response to pulsed light of varying durations. We identify performance-limiting processes and directions for future progress in developing materials and device architectures that realize high-speed photodetection.
引用
收藏
页码:219 / 230
页数:11
相关论文
共 213 条
[51]  
Carvacho G(2021)Organic photodetectors and their application in large area and flexible image sensors: the role of dark current Nat. Commun. 12 3172-undefined
[52]  
Spagnolo N(2001)Ultralow dark current in near-infrared perovskite photodiodes by reducing charge injection and interfacial charge generation Prog. Quantum Electron. 25 57-undefined
[53]  
Sciarrino F(2014)Tunnelling generation-recombination currents in a-Si junctions J. Mater. Chem. C 2 2766-undefined
[54]  
Elshaari AW(2006)Electrical characterization of nanocrystal solids Mater. Today 9 3542-undefined
[55]  
Pernice W(2022)Semiconductor physics and devices Acc. Chem. Res. 55 093201-undefined
[56]  
Srinivasan K(2017)Carbon-based molecular junctions for practical molecular electronics ACS Nano 11 487-undefined
[57]  
Benson O(2015)Structure controlled long-range sequential tunneling in carbon-based molecular junctions J. Phys. Condens. Matter 27 256805-undefined
[58]  
Zwiller V(2014)Theoretical tools for the description of charge transport in disordered organic semiconductors Phys. Status Solidi B 251 2741-undefined
[59]  
Luo W(2011)Theoretical description of charge transport in disordered organic semiconductors Phys. Rev. Lett. 107 16296-undefined
[60]  
Gyger S(2009)Trap-assisted recombination in disordered organic semiconductors Adv. Mater. 21 012001-undefined