2D Silver Nanosheet Assembly for an Isotropic, Stretchable, and Highly Conductive Nanomembrane

M Minjeong Kim S Sonwoo Jung (Center for Nanoparticle Research Institute for Basic Science (IBS) Seoul 08826 Republic of Korea) S Seungyeon Kim M Moon‐ki Choi (Materials Research Laboratory University of Illinois Urbana‐Champaign 104 South Goodwin Ave. MC‐230 Urbana IL 61801 USA) J Jung‐Hoon Hong (School of Electrical and Electronic Engineering Yonsei University Seoul 03722 Republic of Korea) K Kyubeen Kim C Chansul Park (Center for Nanoparticle Research Institute for Basic Science (IBS) Seoul 08826 Republic of Korea) K Ki Jun Yu (Functional Bio-integrated Electronics and Energy Management Laboratory, School of Electrical and Electronic Engineering, Yonsei University) G Gi Doo Cha (Department of Systems Biotechnology Chung‐Ang University Anseong‐si Gyeonggi‐do Republic of Korea) S Sung‐Hyuk Sunwoo (Center for Nanoparticle Research Institute for Basic Science (IBS) Seoul 08826 Republic of Korea) Q Qingchang Liu (Materials Research Laboratory University of Illinois Urbana‐Champaign 104 South Goodwin Ave. MC‐230 Urbana IL 61801 USA) D Dae‐Hyeong Kim (Center for Nanoparticle Research Institute for Basic Science (IBS) Seoul 08826 Republic of Korea) T Tae‐Wook Kim (Department of Flexible and Printable Electronics LANL‐JBNU Engineering Institute‐Korea Jeonbuk National University Jeonju 54896 Republic of Korea)

Abstract

Abstract Achieving isotropic electrical and mechanical properties is essential for skin‐integrated electronics to operate reliably under complex, multidirectional skin deformations. However, nanomaterial‐based composites in skin electronics often rely on anisotropic filler configurations to meet demanding requirements for high‐quality bio‐interfacing materials, such as ultrathin thickness, high conductivity, and stretchability. While directional alignment of high‐aspect‐ratio nanofillers facilitates dense percolation, it compromises isotropic material uniformity. To overcome the trade‐off between high performance and omnidirectional material properties in the nanocomposites, a controlled assembly strategy is proposed for silver nanosheets (AgNSs) that forms face‐to‐face contacts with partial overlaps, enhancing inter‐sheet contact area and reducing contact resistance. Implementing this assembly configuration in an ultrathin elastomeric membrane yields a silver nanosheet nanomembrane (AgNS NM) with both isotropic material properties and high performance, featuring a high conductivity of ≈115 000 S cm −1 , a stretchability of ≈50%, and a total thickness of ≈235 nm. Coarse‐grained molecular dynamics simulations (CGMD) reveal that the degree of overlap correlates with nanosheet geometry, providing design insights for controlling interfacial contact configurations in nanomaterials. Finally, the potential of the AgNS NM for bio‐interfacing applications is demonstrated through an electrical impedance tomography‐based tactile electronic skin, enabling reliable multi‐point pressure mapping and real‐time tracking.

Article Details

Volume / Issue Vol. 38, Issue 20
Published April 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (13)

M

Minjeong Kim

S

Sonwoo Jung

Center for Nanoparticle Research Institute for Basic Science (IBS) Seoul 08826 Republic of Korea

S

Seungyeon Kim

M

Moon‐ki Choi

Materials Research Laboratory University of Illinois Urbana‐Champaign 104 South Goodwin Ave. MC‐230 Urbana IL 61801 USA

J

Jung‐Hoon Hong

School of Electrical and Electronic Engineering Yonsei University Seoul 03722 Republic of Korea

K

Kyubeen Kim

C

Chansul Park

Center for Nanoparticle Research Institute for Basic Science (IBS) Seoul 08826 Republic of Korea

K

Ki Jun Yu

Functional Bio-integrated Electronics and Energy Management Laboratory, School of Electrical and Electronic Engineering, Yonsei University

G

Gi Doo Cha

Department of Systems Biotechnology Chung‐Ang University Anseong‐si Gyeonggi‐do Republic of Korea

S

Sung‐Hyuk Sunwoo

Center for Nanoparticle Research Institute for Basic Science (IBS) Seoul 08826 Republic of Korea

Q

Qingchang Liu

Materials Research Laboratory University of Illinois Urbana‐Champaign 104 South Goodwin Ave. MC‐230 Urbana IL 61801 USA

D

Dae‐Hyeong Kim

Center for Nanoparticle Research Institute for Basic Science (IBS) Seoul 08826 Republic of Korea

T

Tae‐Wook Kim

Department of Flexible and Printable Electronics LANL‐JBNU Engineering Institute‐Korea Jeonbuk National University Jeonju 54896 Republic of Korea