Electronic properties and circuit applications of networks of electrochemically exfoliated 2D nanosheets

T Tian Carey K Kevin Synnatschke (Chair for Molecular Functional Materials, TU Dresden, Stadtgutstr. 59, 01217 Dresden, Germany) G Goutam Ghosh L Luca Anzi E Eoin Caffrey E Emmet Coleman C Changpeng Lin A Anthony Dawson S Shixin Liu R Rebekah Wells M Mark McCrystall J Jan Plutnar I Iva Plutnarová J Joseph Neilson N Nicola Marzari (Theory and Simulation of Materials, and National Centre for Computational Design and Discovery of Novel Materials) L Laurens D. A. Siebbeles R Roman Sordan Z Zdenek Sofer J Jonathan N. Coleman

Abstract

Abstract High aspect-ratio 2D materials are promising for solution-processed electronics, yet the factors controlling exfoliation remain unclear and relatively few solution-processed networks have been electrically characterized. Here we combine theory and experiment to show that electrochemical exfoliation of layered crystals with sufficient stiffness-anisotropy (in-plane/out-of-plane Young’s modulus ratio >1.7) yields high aspect-ratio nanosheets with intrinsic mobilities μ NS  = 20–75 cm²V⁻¹s⁻¹ across transition metal dichalcogenides and related alloys. Impedance spectroscopy indicates that solution-deposited networks can achieve junction-to-nanosheet resistance ratios (R J /R NS ) as low as ~3, supporting theoretical predictions that μ NS / μ Net  = R J /R NS  + 1 and suggesting that further reductions in R J will increase μ Net toward the nanosheet limit ( μ NS ). These networks display n-type, p-type, and ambipolar behaviour, with on/off ratios up to 10⁵ and mobilities μ Net  = 13 cm²V⁻¹s⁻¹. Here, we show that such high-performing 2D materials enable functional solution-processed circuits, including inverters, buffers, a 4-bit digital-to-analog converter, and a circuit capable of encoding and decoding 7-bit ASCII messages.

Article Details

Volume / Issue Vol. 16, Issue 1
Published October 10, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (19)

T

Tian Carey

K

Kevin Synnatschke

Chair for Molecular Functional Materials, TU Dresden, Stadtgutstr. 59, 01217 Dresden, Germany

G

Goutam Ghosh

L

Luca Anzi

E

Eoin Caffrey

E

Emmet Coleman

C

Changpeng Lin

A

Anthony Dawson

S

Shixin Liu

R

Rebekah Wells

M

Mark McCrystall

J

Jan Plutnar

I

Iva Plutnarová

J

Joseph Neilson

N

Nicola Marzari

Theory and Simulation of Materials, and National Centre for Computational Design and Discovery of Novel Materials

L

Laurens D. A. Siebbeles

R

Roman Sordan

Z

Zdenek Sofer

J

Jonathan N. Coleman