TY - JOUR
T1 - Self-Assembled Cellulose Nanocrystal–MXene Hybrid Film for Acceleration Sensing
AU - Shoseyov, Omer
AU - Voignac, Daniel
AU - Belsey, Shylee
AU - Sviri, Danielle
AU - Yochelis, Shira
AU - Sokol, Maxim
AU - Shoseyov, Oded
AU - Paltiel, Yossi
N1 - Publisher Copyright:
© 2025 The Authors. Published by American Chemical Society
PY - 2025/11/12
Y1 - 2025/11/12
N2 - Advances in robotics and micromechanical systems demand miniaturized, low-cost electromechanical sensors. Conventional micro-electromechanical systems (MEMS) rely on complex, expensive top-down fabrication, limiting scalability. Here, we introduce a bottom-up approach for fabricating a flexible acceleration sensor using cellulose nanocrystal (CNC) films combined with conductive 2D MXene nanosheets. The self-assembled hybrid film exhibits sensitivity to acceleration, enabling precise three-axis motion detection. Functioning like a flexible field-effect transistor, the device uses acceleration-induced film deformation to generate charge separation in the chiral piezo films, producing a gating effect with measurable voltage shifts proportional to applied acceleration. This piezoelectric response allows real-time accurate motion tracking. Unlike conventional sensors, the device exhibits nonlinear behavior and is insensitive to the motion direction. Our approach offers a cost-effective solution for applications requiring dynamic motion detection and precise acceleration quantification, while simplifying fabrication and expanding the possibilities for next-generation nano and micro sensing technologies.
AB - Advances in robotics and micromechanical systems demand miniaturized, low-cost electromechanical sensors. Conventional micro-electromechanical systems (MEMS) rely on complex, expensive top-down fabrication, limiting scalability. Here, we introduce a bottom-up approach for fabricating a flexible acceleration sensor using cellulose nanocrystal (CNC) films combined with conductive 2D MXene nanosheets. The self-assembled hybrid film exhibits sensitivity to acceleration, enabling precise three-axis motion detection. Functioning like a flexible field-effect transistor, the device uses acceleration-induced film deformation to generate charge separation in the chiral piezo films, producing a gating effect with measurable voltage shifts proportional to applied acceleration. This piezoelectric response allows real-time accurate motion tracking. Unlike conventional sensors, the device exhibits nonlinear behavior and is insensitive to the motion direction. Our approach offers a cost-effective solution for applications requiring dynamic motion detection and precise acceleration quantification, while simplifying fabrication and expanding the possibilities for next-generation nano and micro sensing technologies.
KW - Biodegradable Sensor
KW - Flexible Piezo Accelerometer
KW - Self-Assembled Acceleration Sensor
KW - Spreadable Accelerometer
UR - https://www.scopus.com/pages/publications/105021331836
U2 - 10.1021/acs.nanolett.5c02824
DO - 10.1021/acs.nanolett.5c02824
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C2 - 41160761
AN - SCOPUS:105021331836
SN - 1530-6984
VL - 25
SP - 16068
EP - 16075
JO - Nano Letters
JF - Nano Letters
IS - 45
ER -