TY - JOUR
T1 - Bioinspired CMOS-compatible ultraviolet focal plane array imagers
AU - Bi, Cheng
AU - Mu, Ge
AU - Lin, Yangye
AU - Tan, Yimei
AU - Luo, Yuning
AU - Hao, Qun
AU - Tang, Xin
N1 - Publisher Copyright:
© 2026 Chinese Laser Press
PY - 2026/4
Y1 - 2026/4
N2 - Ultraviolet (UV) imaging provides irreplaceable optical information in critical fields such as environmental monitoring, biomedicine, industrial detection, astronomical observation, and defense security. Perovskite materials offer solution processability with superior optoelectronic properties, but their UV photodetectors remain confined to single-element configurations due to integration challenges with readout circuits. To overcome this, we develop a bioinspired, complementary metal-oxide-semiconductor (CMOS)-compatible UV focal plane array (FPA) imager featuring a MAPbI3 /ZnO trapping mechanism inspired by bee compound eyes. The architecture employs ZnO nanoparticles to concentrate UV light and a heterojunction that vertically traps photogenerated electrons while laterally separating holes, significantly suppressing carrier recombination. The achieved 640 × 512 UV FPA imager with a 15 μm pixel pitch exhibits a high detectivity of nearly 1011 Jones and 99.19% operability. Applications, including pesticide residue detection, UV anti-counterfeiting, and ecological monitoring (e.g., floral UV signature imaging), are demonstrated, validating its high-resolution UV imaging capabilities for practical scenarios.
AB - Ultraviolet (UV) imaging provides irreplaceable optical information in critical fields such as environmental monitoring, biomedicine, industrial detection, astronomical observation, and defense security. Perovskite materials offer solution processability with superior optoelectronic properties, but their UV photodetectors remain confined to single-element configurations due to integration challenges with readout circuits. To overcome this, we develop a bioinspired, complementary metal-oxide-semiconductor (CMOS)-compatible UV focal plane array (FPA) imager featuring a MAPbI3 /ZnO trapping mechanism inspired by bee compound eyes. The architecture employs ZnO nanoparticles to concentrate UV light and a heterojunction that vertically traps photogenerated electrons while laterally separating holes, significantly suppressing carrier recombination. The achieved 640 × 512 UV FPA imager with a 15 μm pixel pitch exhibits a high detectivity of nearly 1011 Jones and 99.19% operability. Applications, including pesticide residue detection, UV anti-counterfeiting, and ecological monitoring (e.g., floral UV signature imaging), are demonstrated, validating its high-resolution UV imaging capabilities for practical scenarios.
UR - https://www.scopus.com/pages/publications/105043319784
U2 - 10.1364/PRJ.583596
DO - 10.1364/PRJ.583596
M3 - Article
AN - SCOPUS:105043319784
SN - 2327-9125
VL - 14
SP - 1322
EP - 1330
JO - Photonics Research
JF - Photonics Research
IS - 4
ER -