Gravity-driven gradient engineering of room-temperature perovskite thin films for spectral and photodetection applications

F Fei Xiang F Fengren Cao (School of Physical Science and Technology, Jiangsu Key Laboratory of Frontier Material Physics and Devices, Suzhou Key Laboratory of Intelligent Photoelectric Perception, Center for Energy Conversion Materials & Physics (CECMP), Soochow University 1 , Suzhou 215006,) H He Huang Z Zhouchen Wu (School of Physical Science and Technology, Jiangsu Key Laboratory of Frontier Material Physics and Devices, Suzhou Key Laboratory of Intelligent Photoelectric Perception, Center for Energy Conversion Materials & Physics (CECMP), Soochow University 1 , Suzhou 215006,) H Haoxuan Sun (School of Physical Science and Technology, Jiangsu Key Laboratory of Frontier Material Physics and Devices, Suzhou Key Laboratory of Intelligent Photoelectric Perception, Center for Energy Conversion Materials & Physics (CECMP), Soochow University 1 , Suzhou 215006,) M Meng Wang L Liang Li

Abstract

Integration and miniaturization of optoelectronic devices are pivotal for advancing their transition from specialized instruments to consumer electronics. Laterally graded thin films enable multiple device arrays to be realized on a single chip without stacking or assembling multiple discrete films, thereby reducing space occupation. Among them, gradient-thickness thin films replace chemical dimension control (composition) with physical dimension control (thickness), avoiding impurities or lattice mismatches associated with compositional variations. In this work, gradient-thickness perovskite thin films were realized by combining the rapid crystallization of room-temperature processed perovskites with gravity-driven deposition on inclined substrates, which provides a low-cost, room-temperature pathway to wide-range, high-resolution gradient-thickness perovskite thin films. Subsequently, p–i–n structured photodetector arrays were implemented into distinct thickness regions of a single film. The adopted configuration was utilized to construct a miniaturized spectrometer capable of detecting light in the visible wavelength range with a spectral error below 5 nm. Moreover, the proposed design emphasizes the ability to analyze the red, green, and blue components of multicolor light, highlighting its potential for composite light sensing and color imaging applications.

Article Details

Volume / Issue Vol. 128, Issue 12
Published March 23, 2026
ISSN 0003-6951
Publisher American Institute of Physics

Journal Info

Applied Physics Letters

American Institute of Physics

ISSN: 0003-6951 Physical Sciences

Authors (7)

F

Fei Xiang

F

Fengren Cao

School of Physical Science and Technology, Jiangsu Key Laboratory of Frontier Material Physics and Devices, Suzhou Key Laboratory of Intelligent Photoelectric Perception, Center for Energy Conversion Materials & Physics (CECMP), Soochow University 1 , Suzhou 215006,

H

He Huang

Z

Zhouchen Wu

School of Physical Science and Technology, Jiangsu Key Laboratory of Frontier Material Physics and Devices, Suzhou Key Laboratory of Intelligent Photoelectric Perception, Center for Energy Conversion Materials & Physics (CECMP), Soochow University 1 , Suzhou 215006,

H

Haoxuan Sun

School of Physical Science and Technology, Jiangsu Key Laboratory of Frontier Material Physics and Devices, Suzhou Key Laboratory of Intelligent Photoelectric Perception, Center for Energy Conversion Materials & Physics (CECMP), Soochow University 1 , Suzhou 215006,

M

Meng Wang

L

Liang Li