分光计
探测器
纳米线
光学
物理
多路复用
宽带
光电子学
光谱分辨率
响应度
计算机科学
电信
谱线
天文
作者
Ling-Dong Kong,Qingyuan Zhao,Hui Wang,Jiawei Guo,Hai-Yang-Bo Lu,Hao Hao,Shuya Guo,Xuecou Tu,Labao Zhang,Xiaoqing Jia,Lin Kang,Xinglong Wu,Jian Chen,Peiheng Wu
出处
期刊:Nano Letters
[American Chemical Society]
日期:2021-11-03
卷期号:21 (22): 9625-9632
被引量:62
标识
DOI:10.1021/acs.nanolett.1c03393
摘要
Designing a spectrometer without the need for wavelength multiplexing optics can effectively reduce the complexity and physical footprint. On the basis of the computational spectroscopic strategy and combining a broadband-responsive dynamic detector, we successfully demonstrate an optics-free single-detector spectrometer that maps the tunable quantum efficiency of a superconducting nanowire into a matrix to build a solvable mathematical equation. Such a spectrometer can realize a broadband spectral responsivity ranging from 660 to 1900 nm. The spectral resolution at the telecom is sub-10 nm, exceeding the energy resolving capacity of existing infrared single-photon detectors. Meanwhile, benefiting from the optics-free setup, precise time-of-flight measurements can be simultaneously achieved. We have demonstrated a spectral LiDAR with eight spectral channels. This spectrometer scheme paves the way for applying superconducting nanowire detectors in multifunctional spectroscopy and represents a conceptual advancement for on-chip spectroscopy and spectral imaging.
科研通智能强力驱动
Strongly Powered by AbleSci AI