Ultra-sensitive humidity sensors based on a MoS2/graphene Schottky diode

Abstract

The exceptionally high specific surface area of two-dimensional (2D) materials has significantly promoted the development of 2D thin-film-based electronic devices for gas and humidity sensing. This work demonstrates an ultrasensitive electronic humidity sensor based on a monolayer MoS2/monolayer graphene Schottky diode. Within the relative humidity (RH) range of 15% to 55%, the MoS2/graphene Schottky diode based humidity sensor exhibited a remarkable responsivity (ΔR/R0) of approximately 1131.1%, which was three orders of magnitude higher than those of humidity sensors based on monolayer graphene (1.98%), graphene/MoS2 heterostructures (1.69%), and MoS2/graphene heterostructures (1.16%) and was over four times higher than that of monolayer MoS2 based sensors (271.1%). The ultra-sensitive humidity sensing mechanism was attributed to the modulation of the built-in electric field within the MoS2/graphene Schottky diode by adsorbed water molecules. These findings provide valuable insights for promoting the development of 2D material-based electronic devices in humidity sensing applications.

Graphical abstract: Ultra-sensitive humidity sensors based on a MoS2/graphene Schottky diode

Article information

Article type
Communication
Submitted
10 Mar 2026
Accepted
03 Jun 2026
First published
10 Jun 2026

Nanoscale, 2026, Advance Article

Ultra-sensitive humidity sensors based on a MoS2/graphene Schottky diode

H. Ma, Q. Gao, Z. Zhang, K. Yang, J. Ding, W. Zhang and X. Fan, Nanoscale, 2026, Advance Article , DOI: 10.1039/D6NR00970K

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