TY - JOUR
T1 - Processing Halide Perovskite Materials with Semiconductor Technology
AU - Cheng, Chuantong
AU - Zhu, Cheng
AU - Huang, Beiju
AU - Zhang, Huan
AU - Zhang, Hengjie
AU - Chen, Run
AU - Pei, Weihua
AU - Chen, Qi
AU - Chen, Hongda
N1 - Publisher Copyright:
© 2019 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim
PY - 2019/7
Y1 - 2019/7
N2 - Semiconductor technologies make major contributions to scientific and technological improvements, enabling high-performance and low-cost devices, chips, and systems. Photolithography technologies are at the heart of semiconductor technologies and are indispensable in fabricating microstructures and nanostructures. It is obvious that a new emerging material can play a greater role in economic development if it can be processed with photolithography technologies. Halide perovskites have received an enormous amount of attention, as they are useful in photonic and optoelectronic applications due to their strong optical absorption, tunable direct bandgap, and long electron–hole diffusion length. However, photolithography technologies cannot be utilized to fabricate semiconductor devices based on halide perovskite materials because water, a solvent for all halide perovskite materials, is used in the fabrication process. Here, the process compatibility between halide perovskite materials and semiconductor technology is realized with the help of parylene, a kind of polymer. A photodetector based on MAPbI3 and a memristor based on CsPbBr3 fabricated with photolithography technologies are both demonstrated successfully for the first time. This study not only paves the way toward the fabrication of halide perovskite devices with semiconductor technologies but also provides a powerful tool for the in-depth study of halide perovskite materials.
AB - Semiconductor technologies make major contributions to scientific and technological improvements, enabling high-performance and low-cost devices, chips, and systems. Photolithography technologies are at the heart of semiconductor technologies and are indispensable in fabricating microstructures and nanostructures. It is obvious that a new emerging material can play a greater role in economic development if it can be processed with photolithography technologies. Halide perovskites have received an enormous amount of attention, as they are useful in photonic and optoelectronic applications due to their strong optical absorption, tunable direct bandgap, and long electron–hole diffusion length. However, photolithography technologies cannot be utilized to fabricate semiconductor devices based on halide perovskite materials because water, a solvent for all halide perovskite materials, is used in the fabrication process. Here, the process compatibility between halide perovskite materials and semiconductor technology is realized with the help of parylene, a kind of polymer. A photodetector based on MAPbI3 and a memristor based on CsPbBr3 fabricated with photolithography technologies are both demonstrated successfully for the first time. This study not only paves the way toward the fabrication of halide perovskite devices with semiconductor technologies but also provides a powerful tool for the in-depth study of halide perovskite materials.
KW - halide perovskite
KW - memristor
KW - photodetector
KW - photolithography
KW - semiconductor technology
UR - http://www.scopus.com/inward/record.url?scp=85063693937&partnerID=8YFLogxK
U2 - 10.1002/admt.201800729
DO - 10.1002/admt.201800729
M3 - Article
AN - SCOPUS:85063693937
SN - 2365-709X
VL - 4
JO - Advanced Materials Technologies
JF - Advanced Materials Technologies
IS - 7
M1 - 1800729
ER -