All-in-plane image sensors free from readout integrated circuits
Abstract
High resolution image sensors require electrical access to each individual pixel for signal readout. Such access is especially challenging for ultra-miniaturized pixels, for heterogeneously integrated sensing and readout layers in long-wavelength detectors, and for novel light-sensing materials with unestablished integration to silicon chips. Here, we introduce and experimentally validate a novel imaging approach that does not require electrical connections to individual pixels. The sensor matrix involves photoresistive pixels connected neighbor-to-neighbor and packed into a rectangular lattice. The signal readout is based on electrical impedance tomography applied to the photoresistance: the photovoltage is measured at the matrix boundary at various positions of injected bias current, and the image is reconstructed algorithmically. We present experimental validations for moderate-size infrared imagers based on multilayer graphene (24 pixels) and amorphous vanadium oxide (264 pixels). The reconstruction procedure is mathematically stable, sustainable to variations of pixel resistivity and photosensitivity, and its complexity is that of linear system solution. The proposed method enables unprecedented architecture simplification of imaging devices.
Keywords
Cite
@article{arxiv.2603.08178,
title = {All-in-plane image sensors free from readout integrated circuits},
author = {Kirill Kapralov and Ilya Mazurenko and Elizaveta Tarkaeva and Valentin Semkin and Oleg Kononenko and Maxim Knyazev and Viktor Matveev and Mikhail Kashchenko and Alexander Morozov and Ivan Domaratsky and Vladimir Kaydashev and Yana Litun and Aleksandr Kuntsevich and Alexey Bocharov and Dmitry Svintsov},
journal= {arXiv preprint arXiv:2603.08178},
year = {2026}
}
Comments
9 pages, 3 figures