Balancing Pd-H Interactions: Thiolate-Protected Palladium Nanoclusters for Robust and Rapid Hydrogen Gas Sensing.

Chen, Zhuo; Yuan, Peng; Chen, Cailing; Wang, Xinhuilan; Wang, Jinrong; Jia, Jiaqi; Davaasuren, Bambar; Lai, Zhiping et al. · Adv Mater · 2024

basic_science · Level V

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Abstract

The transition toward hydrogen gas (H<sub>2</sub>) as an eco-friendly and renewable energy source necessitates advanced safety technologies, particularly robust sensors for H<sub>2</sub> leak detection and concentration monitoring. Although palladium (Pd)-based materials are preferred for their strong H<sub>2</sub> affinity, intense palladium-hydrogen (Pd-H) interactions lead to phase transitions to palladium hydride (PdH<sub>x</sub>), compromising sensors' durability and detection speeds after multiple uses. In response, this study introduces a high-performance H<sub>2</sub> sensor designed from thiolate-protected Pd nanoclusters (Pd<sub>8</sub>SR<sub>16</sub>), which leverages the synergistic effect between the metal and protective ligands to form an intermediate palladium-hydrogen-sulfur (Pd-H-S) state during H<sub>2</sub> adsorption. Striking a balance, it preserves Pd-H binding affinity while preventing excessive interaction, thus lowering the energy required for H<sub>2</sub> desorption. The dynamic adsorption-dissociation-recombination-desorption process is efficiently and highly reversible with Pd<sub>8</sub>SR<sub>16</sub>, ensuring robust and rapid H<sub>2</sub> sensing at parts per million (ppm). The Pd<sub>8</sub>SR<sub>16</sub>-based sensor demonstrates exceptional stability (50 cycles; 0.11% standard deviation in response), prompt response/recovery (t<sub>90</sub> = 0.95 s/6 s), low limit of detection (LoD, 1 ppm), and ambient temperature operability, ranking it among the most sensitive Pd-based H<sub>2</sub> sensors. Furthermore, a multifunctional prototype demonstrates the practicality of real-world gas sensing using ligand-protected metal nanoclusters.