Fullerene-decorated PdCo nano-resistor network hydrogen sensors with sub-second response and parts-per-billion detection at room temperature

T Tu Anh Ngo (Department of Physics and Astronomy) A Ashwin T. Magar M Minh T. Pham H Hoang M. Luong T Thi Thu Trinh Phan M M. Tuan Trinh M Michael Jung G George K. Larsen Y Yiping Zhao T Tho D. Nguyen (Department of Physics and Astronomy)

Abstract

Abstract Hydrogen detection with rapid response and ultra-low detection limits remains a critical challenge for safety and energy applications. Here, we report a fullerene-decorated PdCo nano-resistor network sensor that integrates nanostructuring, alloying, and surface-engineering approaches. The C 60 layer enhances sensor performance by increasing the surface-to-volume ratio, enabling fast hydrogen diffusion, relieving mechanical stress during cycling, and guiding nanostructure morphology. Our composite device (20 nm C 60 /3 nm Teflon AF/5 nm Pd 63 Co 37 /30 nm Teflon AF) achieves a response time of 0.40 ± 0.06 s across 1–100 mbar H 2 and detects 40 ppb H 2 with a signal-to-noise ratio of 10 at room temperature. A poly(methyl methacrylate) (PMMA) topcoat further improves cycling stability and selectivity under 90% relative humidity and interfering gases. This design provides a scalable approach and opens the door to future adaptation of porous carbon-based frameworks and polymeric interlayers to realize robust, high-performance hydrogen sensors for real-world applications.

Article Details

Volume / Issue Vol. 17, Issue 1
Published December 19, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (10)

T

Tu Anh Ngo

Department of Physics and Astronomy

A

Ashwin T. Magar

M

Minh T. Pham

H

Hoang M. Luong

T

Thi Thu Trinh Phan

M

M. Tuan Trinh

M

Michael Jung

G

George K. Larsen

Y

Yiping Zhao

T

Tho D. Nguyen

Department of Physics and Astronomy