TY - JOUR
T1 - Emerging molecular ferroelectrics for high-performance perovskite optoelectronic devices
AU - Wang, Zhijie
AU - Li, Haiyun
AU - Luo, Ming
AU - Jiang, Dongrui
AU - Lian, Xinxin
AU - Chen, Yifan
AU - Gao, Liucheng
AU - Xu, Chunyu
AU - Wu, Shengfan
AU - Chu, Junhao
AU - Zhang, Hong
N1 - Publisher Copyright:
© 2025 Science Press
PY - 2025/10
Y1 - 2025/10
N2 - Perovskite optoelectronic devices, capitalizing on the exceptional light-matter interaction and semiconductor properties of perovskite materials, have emerged as transformative platforms for energy conversion, information storage, and photonic technologies. While material innovations and device engineering breakthroughs have propelled remarkable advancements, persistent challenges in operational stability, scalable manufacturing, and batch reproducibility continue to hinder commercial implementation. Recently, molecular ferroelectrics (MOFEs), as a class of materials characterized by polar crystal structures and switchable spontaneous polarization (Ps), offer novel pathways to regulate high-efficiency and stable perovskite optoelectronic devices. Here, we systematically review the application of MOFEs into diverse perovskite optoelectronic systems, emphasizing the synergistic effect between Ps and optoelectronic properties. We analyze MOFEs-based photodetectors spanning self-powered, X-ray, and polarized-light detectors, detailing how Ps and synergistic physical effects optimize device performance. For photovoltaic applications, we elucidate polarization-driven performance enhancement mechanisms in perovskite solar cells (PSCs), including built-in field amplification, defect passivation, and stability improvement. Furthermore, we envisage the emerging applications of MOFEs in optoelectronic fields such as non-volatile memory, neuromorphic computing, and optical communication. Overall, this review furnishes valuable insights into optoelectronics and future energy.
AB - Perovskite optoelectronic devices, capitalizing on the exceptional light-matter interaction and semiconductor properties of perovskite materials, have emerged as transformative platforms for energy conversion, information storage, and photonic technologies. While material innovations and device engineering breakthroughs have propelled remarkable advancements, persistent challenges in operational stability, scalable manufacturing, and batch reproducibility continue to hinder commercial implementation. Recently, molecular ferroelectrics (MOFEs), as a class of materials characterized by polar crystal structures and switchable spontaneous polarization (Ps), offer novel pathways to regulate high-efficiency and stable perovskite optoelectronic devices. Here, we systematically review the application of MOFEs into diverse perovskite optoelectronic systems, emphasizing the synergistic effect between Ps and optoelectronic properties. We analyze MOFEs-based photodetectors spanning self-powered, X-ray, and polarized-light detectors, detailing how Ps and synergistic physical effects optimize device performance. For photovoltaic applications, we elucidate polarization-driven performance enhancement mechanisms in perovskite solar cells (PSCs), including built-in field amplification, defect passivation, and stability improvement. Furthermore, we envisage the emerging applications of MOFEs in optoelectronic fields such as non-volatile memory, neuromorphic computing, and optical communication. Overall, this review furnishes valuable insights into optoelectronics and future energy.
KW - Bulk photovoltaic effect
KW - Ferroelectrochemistry
KW - Molecular ferroelectrics
KW - Perovskite solar cells
KW - Photodetector
UR - https://www.scopus.com/pages/publications/105007725198
U2 - 10.1016/j.jechem.2025.05.040
DO - 10.1016/j.jechem.2025.05.040
M3 - 文献综述
AN - SCOPUS:105007725198
SN - 2095-4956
VL - 109
SP - 251
EP - 269
JO - Journal of Energy Chemistry
JF - Journal of Energy Chemistry
ER -