Lv Xiali, Wu Fengxia, Tian Yu, Zuo Peng, Li Fenghua, Xu Guobao, Niu Wenxin
State Key Laboratory of Electroanalytical Chemistry, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, Changchun, 130022, China.
School of Applied Chemistry and Engineering, University of Science and Technology of China, Hefei, 230026, China.
Adv Mater. 2023 Dec;35(51):e2305429. doi: 10.1002/adma.202305429. Epub 2023 Nov 7.
Metal helicoid nanoparticles with intrinsic 3D chiral structures have emerged as a new class of plasmonic metamaterials with outstanding chiroplasmonic properties. Despite the considerable potential of metal helicoid nanoparticles in chiroplasmonic sensing, their sensing capabilities remain elusive, stressing the need for the rational chirality engineering of helicoid nanoparticles. In this report, Au@Pd helicoid nanoparticles with engineered chiroplasmonic properties and integrated hydrogen sensing capabilities are rationally synthesized. As chiroplasmonic metamaterials, the Au@Pd helicoid nanoparticles exhibit unprecedented sensitivity for hydrogen chiroplasmonic sensing in the visible range. A significant circular dichroism red-shift as large as 206.1 nm can be achieved when they are exposed to hydrogen. Such a high sensitivity outperforms all the plasmonic hydrogen sensors in the visible range. Besides sensitivity, the chiroplasmonic sensing platform shows a good linear range of 1.5-6.0% hydrogen concentration with higher figure of merit, excellent selectivity, and good reusability. To further demonstrate its applicability, this chiroplasmonic hydrogen sensing platform is utilized to investigate hydrogen absorption and desorption kinetics on Pd. This study heralds a new paradigm for plasmonic hydrogen sensing and highlights the tremendous potential of utilizing helicoid nanoparticles as chiroplasmonic sensing metamaterials by chirality engineering.
具有固有三维手性结构的金属螺旋纳米粒子已成为一类新型的具有出色手性等离子体特性的等离子体超材料。尽管金属螺旋纳米粒子在手性等离子体传感方面具有巨大潜力,但其传感能力仍不明确,这凸显了对螺旋纳米粒子进行合理手性工程设计的必要性。在本报告中,合理合成了具有工程化手性等离子体特性和集成氢传感能力的金@钯螺旋纳米粒子。作为手性等离子体超材料,金@钯螺旋纳米粒子在可见光范围内对氢手性等离子体传感表现出前所未有的灵敏度。当它们暴露于氢气中时,可实现高达206.1纳米的显著圆二色性红移。如此高的灵敏度在可见光范围内优于所有等离子体氢传感器。除了灵敏度外,手性等离子体传感平台还显示出1.5 - 6.0%氢浓度的良好线性范围,具有更高的品质因数、出色的选择性和良好的可重复使用性。为了进一步证明其适用性,该手性等离子体氢传感平台被用于研究钯上的氢吸收和解吸动力学。这项研究开创了等离子体氢传感的新范式,并突出了通过手性工程将螺旋纳米粒子用作手性等离子体传感超材料的巨大潜力。