TY - JOUR
T1 - Perovskite CsPb2Br5 Microplate Laser with Enhanced Stability and Tunable Properties
AU - Tang, Xiaosheng
AU - Hu, Zhiping
AU - Yuan, Wei
AU - Hu, Wei
AU - Shao, Haibing
AU - Han, Dongjia
AU - Zheng, Junfeng
AU - Hao, Jiongyue
AU - Zang, Zhigang
AU - Du, Juan
AU - Leng, Yuxin
AU - Fang, Liang
AU - Zhou, Miao
N1 - Publisher Copyright:
© 2016 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim
PY - 2017/2/2
Y1 - 2017/2/2
N2 - Recent years have witnessed a surge of research in all-inorganic perovskite nanomaterials for solar cells and light emitting diodes due to their higher chemical stability compared to their hybrid organic–inorganic counterparts. Herein, by combining material synthesis, characterization, optical measurement, and density functional theory based first principles calculation, a type of all-inorganic perovskite CsPb2Br5 microplate with superior crystallinity, enhanced stability, and tunable optical properties is reported. With a robust band gap of ≈2.44 eV, CsPb2Br5 microplate exhibits low-threshold amplified spontaneous emission under both one- and two-photon excitation, which is related to its unique spatially distinguished valence/conduction band edge states originating from the intrinsic sandwiched structure. These results are expected to shed new light on future design and development of novel perovskite nanomaterials for optoelectronic devices.
AB - Recent years have witnessed a surge of research in all-inorganic perovskite nanomaterials for solar cells and light emitting diodes due to their higher chemical stability compared to their hybrid organic–inorganic counterparts. Herein, by combining material synthesis, characterization, optical measurement, and density functional theory based first principles calculation, a type of all-inorganic perovskite CsPb2Br5 microplate with superior crystallinity, enhanced stability, and tunable optical properties is reported. With a robust band gap of ≈2.44 eV, CsPb2Br5 microplate exhibits low-threshold amplified spontaneous emission under both one- and two-photon excitation, which is related to its unique spatially distinguished valence/conduction band edge states originating from the intrinsic sandwiched structure. These results are expected to shed new light on future design and development of novel perovskite nanomaterials for optoelectronic devices.
KW - all-inorganic perovskite
KW - first-principles
KW - microplate synthesis
KW - tunable band gap
KW - two-photon laser
UR - https://www.scopus.com/pages/publications/85003806555
U2 - 10.1002/adom.201600788
DO - 10.1002/adom.201600788
M3 - 文章
AN - SCOPUS:85003806555
SN - 2195-1071
VL - 5
JO - Advanced Optical Materials
JF - Advanced Optical Materials
IS - 3
M1 - 1600788
ER -