Department of Electronics, College of Electronic Information and Optical Engineering, Nankai University, Tianjin 300350, China.
Department of Physics, University of Puerto Rico Rio Piedras, San Juan, PR 00931, USA.
Nanoscale. 2019 Nov 28;11(44):21074-21080. doi: 10.1039/c9nr07834g. Epub 2019 Nov 5.
The metallic dopants in palladium (Pd) sensing materials enable modification of the d-band center of Pd, which is expected to tune the α-β phase transitions of the PdH intermediate, thus improve the sensing stability to hydrogen. Here, the boosted hydrogen-sensing stability at ultra-low temperatures has been achieved with palladium/cobalt nanowires (PdCo NWs) as the sensing material. The various Co contents in PdCo NWs were modulated via AAO-template-confined electrodeposition. The temperature-dependent sensing evaluations were performed in 0.1-3 v/v% hydrogen. Such sensors integrated with PdCo NWs are able to stably detect hydrogen as low as 0.1 v/v%, even when the temperature is lowered to 273 K. In addition, the critical temperatures of "reverse sensing behavior" of the PdCo NWs (PdCo: T = 194 K; PdCo: T = 180 K; PdCo: T = 184 K) are observed much lower than that of pristine Pd NWs (T = 287 K). Specifically, the PdCo NWs (∼37 at% Co content) sensor shows outstanding stability of sensing hydrogen against α-β phase transitions within the wide temperature range of 180-388 K, which is attributed to both the electronic interactions between Pd and Co and the lattice compression strain caused by Co dopants. Moreover, the "reverse sensing behavior" of the PdCo NWs is explicitly interpreted using the α-β phase transition model.
钯(Pd)传感材料中的金属掺杂剂能够修饰 Pd 的 d 带中心,这有望调节 PdH 中间相的α-β相变,从而提高对氢的传感稳定性。在这里,通过钯/钴纳米线(PdCo NWs)作为传感材料,实现了超低温度下氢气传感稳定性的提高。通过 AAO 模板限制的电沉积来调节 PdCo NWs 中的各种 Co 含量。在 0.1-3 v/v%氢气中进行了温度依赖性传感评估。集成有 PdCo NWs 的这种传感器能够稳定地检测低至 0.1 v/v%的氢气,即使温度降低至 273 K 也是如此。此外,PdCo NWs 的“反向传感行为”的临界温度(PdCo:T = 194 K;PdCo:T = 180 K;PdCo:T = 184 K)明显低于原始 Pd NWs(T = 287 K)。具体而言,PdCo NWs(约 37 at% Co 含量)传感器在 180-388 K 的宽温度范围内表现出出色的氢传感稳定性,这归因于 Pd 和 Co 之间的电子相互作用以及 Co 掺杂剂引起的晶格压缩应变。此外,使用α-β相变模型明确解释了 PdCo NWs 的“反向传感行为”。