Bio‐Inspired Electrolocation Based on Electrostatic Interfacial Enhancement

R Ruotong Zhang Y Yiu Leung James Poon (Department of Mechanical Engineering The University of Hong Kong Hong Kong China) H Huanqing Cui (Department of Mechanical Engineering The University of Hong Kong Hong Kong China) C Chang Li Y Yang Cao C Christina C. K. Au Yeung (Department of Mechanical Engineering The University of Hong Kong Hong Kong China) G Gillian Season Eveline (Advanced Biomedical Instrumentation Centre Hong Kong Science Park Hong Kong China) H Haisong Lin (Department of Mechanical Engineering The University of Hong Kong Hong Kong China) H Ho Cheung Shum (Advanced Biomedical Instrumentation Centre)

Abstract

ABSTRACT As one of the remote sensing abilities, electrolocation allows organisms to hunt, navigate, and interact with the environment by sensing electric fields. Mimicking this capability in artificial systems will provide a powerful strategy for remote object detection and inspection. However, current artificial approaches are restricted to conductive medium or charged targets, while electrolocation of uncharged targets in the non‐conductive medium has not been achieved yet. In this work, an electrostatic interfacial enhancement‐based electrolocation system (EIEEs) that fundamentally expands the scope of artificial electrolocation is proposed. Inspired by the electric organs of elasmobranch fish and the mechanosensory setae of insects, EIEEs employs electret materials as the electrostatic source and high‐permittivity droplets as mechanosensory structures, locating objects with permittivities different from the medium. The proposed EIEEs can effectively detect uncharged solid/liquid objects without electrical connection, signal processing, or external power supply. Importantly, EIEEs also demonstrates the capability to detect multiple buried defects in objects, including gas in liquids, solid in liquids, liquid in liquids, and gas in solids, which has been largely unexplored in previous electrolocation systems. As a general‐purpose remote sensing system for both surface and subsurface inspection, EIEEs can potentially provide a complementary modality for diverse scientific and technological domains.

Article Details

Volume / Issue Vol. 38, Issue 23
Published April 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (9)

R

Ruotong Zhang

Y

Yiu Leung James Poon

Department of Mechanical Engineering The University of Hong Kong Hong Kong China

H

Huanqing Cui

Department of Mechanical Engineering The University of Hong Kong Hong Kong China

C

Chang Li

Y

Yang Cao

C

Christina C. K. Au Yeung

Department of Mechanical Engineering The University of Hong Kong Hong Kong China

G

Gillian Season Eveline

Advanced Biomedical Instrumentation Centre Hong Kong Science Park Hong Kong China

H

Haisong Lin

Department of Mechanical Engineering The University of Hong Kong Hong Kong China

H

Ho Cheung Shum

Advanced Biomedical Instrumentation Centre