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NiSe 和 CoSe 拓扑节线半导体:高效热等离子体学和太阳能驱动光热膜蒸馏的可持续平台。

NiSe and CoSe Topological Nodal-Line Semimetals: A Sustainable Platform for Efficient Thermoplasmonics and Solar-Driven Photothermal Membrane Distillation.

机构信息

Department of Chemistry, Ben-Gurion University, Be'er Sheva, 8410501, Israel.

Department of Physics, Indian Institute of Technology Kanpur, Kanpur, 208016, India.

出版信息

Small. 2022 Aug;18(31):e2201473. doi: 10.1002/smll.202201473. Epub 2022 Jul 9.

DOI:10.1002/smll.202201473
PMID:35808958
Abstract

The control of heat at the nanoscale via the excitation of localized surface plasmons in nanoparticles (NPs) irradiated with light holds great potential in several fields (cancer therapy, catalysis, desalination). To date, most thermoplasmonic applications are based on Ag and Au NPs, whose cost of raw materials inevitably limits the scalability for industrial applications requiring large amounts of photothermal NPs, as in the case of desalination plants. On the other hand, alternative nanomaterials proposed so far exhibit severe restrictions associated with the insufficient photothermal efficacy in the visible, the poor chemical stability, and the challenging scalability. Here, it is demonstrated the outstanding potential of NiSe and CoSe topological nodal-line semimetals for thermoplasmonics. The anisotropic dielectric properties of NiSe and CoSe activate additional plasmonic resonances. Specifically, NiSe and CoSe NPs support multiple localized surface plasmons in the optical range, resulting in a broadband matching with sunlight radiation spectrum. Finally, it is validated the proposed NiSe and CoSe-based thermoplasmonic platform by implementing solar-driven membrane distillation by adopting NiSe and CoSe nanofillers embedded in a polymeric membrane for seawater desalination. Remarkably, replacing Ag with NiSe and CoSe for solar membrane distillation increases the transmembrane flux by 330% and 690%, respectively. Correspondingly, costs of raw materials are also reduced by 24 and 11 times, respectively. The results pave the way for the advent of NiSe and CoSe for efficient and sustainable thermoplasmonics and related applications exploiting sunlight within the paradigm of the circular blue economy.

摘要

通过用光照射纳米粒子 (NPs) 来激发局域表面等离激元来控制纳米尺度的热量,在癌症治疗、催化、海水淡化等多个领域具有巨大的潜力。迄今为止,大多数热等离子体应用都基于 Ag 和 Au NPs,其原材料成本不可避免地限制了需要大量光热 NPs 的工业应用的可扩展性,例如海水淡化厂。另一方面,迄今为止提出的替代纳米材料由于在可见光下的光热效率不足、化学稳定性差以及可扩展性具有挑战性而受到严重限制。在这里,展示了 NiSe 和 CoSe 拓扑节线半导体在热等离子体方面的卓越潜力。NiSe 和 CoSe 的各向异性介电特性激活了额外的等离子体共振。具体来说,NiSe 和 CoSe NPs 在光学范围内支持多个局域表面等离激元,从而与太阳光辐射光谱实现宽带匹配。最后,通过采用嵌入聚合物膜中的 NiSe 和 CoSe 纳米填料来实现太阳能驱动的膜蒸馏,验证了所提出的基于 NiSe 和 CoSe 的热等离子体平台。值得注意的是,用 NiSe 和 CoSe 替代 Ag 进行太阳能膜蒸馏,分别将跨膜通量提高了 330%和 690%。相应地,原材料成本也分别降低了 24 倍和 11 倍。这些结果为 NiSe 和 CoSe 在高效可持续的热等离子体和利用阳光的相关应用中铺平了道路,这些应用在循环蓝色经济的范式下利用阳光。

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