Please use this identifier to cite or link to this item: https://hdl.handle.net/10356/174642
Title: Multiscale heterogeneities-based piezoresistive interfaces with ultralow detection limitation and adaptively switchable pressure detectability
Authors: He, Xuecheng
Cui, Zequn
Zhang, Feilong
Li, Yanzhen
Tu, Jiaqi
Cao, Jinwei
Wang, Jianwu
Qiao, Yuchun
Xi, Pengxu
Xu, Tailin
Chen, Xiaodong
Zhang, Xueji
Keywords: Engineering
Issue Date: 2024
Source: He, X., Cui, Z., Zhang, F., Li, Y., Tu, J., Cao, J., Wang, J., Qiao, Y., Xi, P., Xu, T., Chen, X. & Zhang, X. (2024). Multiscale heterogeneities-based piezoresistive interfaces with ultralow detection limitation and adaptively switchable pressure detectability. ACS Nano, 18(11), 8296-8306. https://dx.doi.org/10.1021/acsnano.3c12513
Project: A18A1b0045 
Journal: ACS Nano 
Abstract: Mechanical compliance and electrical enhancement are crucial for pressure sensors to promote performances when perceiving external stimuli. Here we propose a bioinspired multiscale heterogeneity-based interface to adaptively regulate its structure layout and switch to desirable piezoresistive behaviors with ultralow detection limitation. In such a multiscale heterogeneities system, the micro-/nanoscale spiny Ag-MnO2 heterostructure contributes to an ultralow detection limitation of 0.008 Pa and can perceive minor pressure increments under preloads with high resolution (0.0083%). The macroscale heterogeneous orientation of the cellular backbone enables anisotropic deformation, allowing the sensor to switch to rational sensitivity and working range (e.g., 580 kPa-1 for 0-20 kPa/54 kPa-1 for 60-140 kPa) as required. The sensor's stepwise activation progresses from the micro-/nanoscale heterostructure to the macroscale heterogeneous orientation, which can adaptively match diverse sensing tasks in complex applications scenarios. This multiscale heterogeneous and switchable design holds immense potential in the development of intelligent electromechanical devices, including wearable sensors, soft robotics, and smart actuators.
URI: https://hdl.handle.net/10356/174642
ISSN: 1936-0851
DOI: 10.1021/acsnano.3c12513
Schools: School of Materials Science and Engineering 
Research Centres: Innovative Centre for Flexible Devices (iFLEX)
Rights: © 2024 American Chemical Society. All rights reserved. This article may be downloaded for personal use only. Any other use requires prior permission of the copyright holder. The Version of Record is available online at http://doi.org/10.1021/acsnano.3c12513.
Fulltext Permission: embargo_20250326
Fulltext Availability: With Fulltext
Appears in Collections:MSE Journal Articles

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