» Articles » PMID: 28937737

Hollow Pd-Ag Composite Nanowires for Fast Responding and Transparent Hydrogen Sensors

Overview
Date 2017 Sep 23
PMID 28937737
Citations 7
Authors
Affiliations
Soon will be listed here.
Abstract

Pd based alloy materials with hollow nanostructures are ideal hydrogen (H) sensor building blocks because of their double-H sensing active sites (interior and exterior side of hollow Pd alloy) and fast response. In this work, for the first time, we report a simple fabrication process for preparing hollow Pd-Ag alloy nanowires (Pd@Ag HNWs) by using the electrodeposition of lithographically patterned silver nanowires (NWs), followed by galvanic replacement reaction (GRR) to form palladium. By controlling the GRR time of aligned Ag NWs within an aqueous Pd-containing solution, the compositional transition and morphological evolution from Ag NWs to Pd@Ag HNWs simultaneously occurred, and the relative atomic ratio between Pd and Ag was controlled. Interestingly, a GRR duration of 17 h transformed Ag NWs into Pd@Ag HNWs that showed enhanced H response and faster sensing response time, reduced 2.5-fold, as compared with Ag NWs subjected to a shorter GRR period of 10 h. Furthermore, Pd@Ag HNWs patterned on the colorless and flexible polyimide (cPI) substrate showed highly reversible H sensing characteristics. To further demonstrate the potential use of Pd@Ag HNWs as sensing layers for all-transparent, wearable H sensing devices, we patterned the Au NWs perpendicular to Pd@Ag HNWs to form a heterogeneous grid-type metallic NW electrode which showed reversible H sensing properties in both bent and flat states.

Citing Articles

Advancements in Flexible and Stretchable Electronics for Resistive Hydrogen Sensing: A Comprehensive Review.

Park K, Kim M Sensors (Basel). 2024; 24(20).

PMID: 39460116 PMC: 11510921. DOI: 10.3390/s24206637.


High-performance hydrogen gas sensor system based on transparent coaxial cylinder capacitive electrodes and a volumetric analysis technique.

Jung J, Lee J Sci Rep. 2024; 14(1):1967.

PMID: 38263427 PMC: 10805870. DOI: 10.1038/s41598-024-52168-3.


Nanomaterials-based biosensor and their applications: A review.

Malik S, Singh J, Goyat R, Saharan Y, Chaudhry V, Umar A Heliyon. 2023; 9(9):e19929.

PMID: 37809900 PMC: 10559358. DOI: 10.1016/j.heliyon.2023.e19929.


A fine single Pd microwire H sensor fabricated by using a femtosecond laser for a wide detection range at room temperature.

Zhu H, Dai Y, Sun X, Xia H Nanoscale Adv. 2022; 4(19):4162-4168.

PMID: 36285211 PMC: 9514561. DOI: 10.1039/d2na00462c.


Nanomaterials for IoT Sensing Platforms and Point-of-Care Applications in South Korea.

Choi S, Lee J, Choi W, Seo J, Choi S Sensors (Basel). 2022; 22(2).

PMID: 35062576 PMC: 8781063. DOI: 10.3390/s22020610.