TY - JOUR
T1 - Recent Progress in Low Threshold Plasmonic Nanolasers
AU - Wang, Ru
AU - Wang, Chunfeng
AU - Ma, Yi
AU - Sun, Jianli
AU - Yan, Peiguang
AU - Xu, Chunxiang
AU - Pan, Caofeng
N1 - Publisher Copyright:
© 2023 Wiley-VCH GmbH.
PY - 2023/8/7
Y1 - 2023/8/7
N2 - Plasmonic nanolasers as a new class of coherent laser beyond the diffraction limit have attracted a lot of attention. However, the ultrahigh optical confinement caused by the plasmon effect is inevitably accompanied by metal absorption loss, thus increasing the pump threshold of the plasmonic nanolaser. In the past decade, many good results about low threshold plasmonic nanolasers have been realized and successfully extended to various applications. Here, this advance is discussed and some opinions are offered. First, based on the theoretical model and key parameters of the plasmonic nanolaser, the factors affecting the threshold are analyzed. Subsequently, the experimental efforts on the realization of low threshold plasmonic nanolasers from optical pumping to electrical pumping are reviewed. Their applications in on-chip optical interconnects, biochemical analysis, and far-field structure are then considered. Finally, feasible approaches to threshold reduction are discussed, as well as more possible applications in the future.
AB - Plasmonic nanolasers as a new class of coherent laser beyond the diffraction limit have attracted a lot of attention. However, the ultrahigh optical confinement caused by the plasmon effect is inevitably accompanied by metal absorption loss, thus increasing the pump threshold of the plasmonic nanolaser. In the past decade, many good results about low threshold plasmonic nanolasers have been realized and successfully extended to various applications. Here, this advance is discussed and some opinions are offered. First, based on the theoretical model and key parameters of the plasmonic nanolaser, the factors affecting the threshold are analyzed. Subsequently, the experimental efforts on the realization of low threshold plasmonic nanolasers from optical pumping to electrical pumping are reviewed. Their applications in on-chip optical interconnects, biochemical analysis, and far-field structure are then considered. Finally, feasible approaches to threshold reduction are discussed, as well as more possible applications in the future.
KW - low threshold
KW - plasmonic nanolasers
KW - semiconductor lasers
KW - spaser
KW - surface plasmons
UR - https://www.scopus.com/pages/publications/85160673380
U2 - 10.1002/adom.202203137
DO - 10.1002/adom.202203137
M3 - 文献综述
AN - SCOPUS:85160673380
SN - 2195-1071
VL - 11
JO - Advanced Optical Materials
JF - Advanced Optical Materials
IS - 15
M1 - 2203137
ER -