通过无溶剂激光辐照快速合成用于能量存储和转换的纳米材料

Winda Devina, Iyan Subiyanto, D. T. Dung, Seong Ok Han, Hyung Chul Yoon, Do Van Lam, Seung-Mo Lee, Hyunuk Kim
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引用次数: 0

摘要

通过激光辐照合成的纳米材料在能量存储和转换领域有着广泛的应用。传统的纳米材料制造方法通常需要较长的反应时间,因此容易出现可重复性、杂质和不均匀性等问题。为了解决这些问题,我们提出了一种在气相中通过无溶剂激光辐照合成纳米材料的新策略,作为一种潜在的解决方案。与传统的耗时方法相比,这种创新策略可提供超快的加热和冷却过程,从而在飞秒到纳秒的时间范围内形成均匀的纳米系统。聚焦激光束可在空气或惰性气体环境中诱导快速光热和光化学效应,从而实现纳米材料的快速生产,并通过调整加工条件和烧结介质对几何形状、化学性质、结晶度和缺陷密度进行精确控制。本综述深入探讨了在空气和惰性气氛中利用天然碳基材料、聚合物、金属有机框架和无机物快速合成纳米材料的无溶剂激光辅助技术。在各种前驱体中引入光照射可促进纳米产品的相变和表面功能化。我们还讨论了改变激光波长、脉宽、通量和重复率对最终产品的表面和体积特性的影响。最后,我们探讨了激光诱导纳米材料在充电电池、超级电容器、太阳能电池和催化等领域的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Rapid synthesis of nanomaterials by solvent-free laser irradiation for energy storage and conversion
Nanomaterials synthesized through laser irradiation have numerous applications in the field of energy storage and conversion. Conventional methods for fabricating nanomaterials often involve extended reaction times, making them susceptible to issues such as reproducibility, impurities, and inhomogeneity. To address these issues, a novel strategy of synthesizing nanomaterials via solvent-free laser irradiation in the gas phase is proposed as a potential solution. This innovative strategy offers ultrafast heating and cooling processes compared to conventional time-consuming methods, resulting in the formation of homogeneous nanosystems within femto- to nanosecond timeframes. The focused laser beam induces rapid photothermal and photochemical effects in either air or an inert gas atmosphere, enabling the rapid production of nanomaterials with precise control over geometry, chemistry, crystallinity, and defect density by adjusting processing conditions and sintering mediums. This review provides insights into the rapid solvent-free laser-assisted synthesis of nanomaterials using natural carbon-based materials, polymers, metal–organic frameworks, and inorganic species in both air and inert atmospheres. The introduction of photo-irradiation across a wide range of precursors facilitates phase transitions and surface functionalization in the resulting nanoproducts. We also discuss the effects of altering laser wavelengths, pulse widths, fluences, and repetition rates on both surface and bulk properties of the final products. Finally, we explore the applications of laser-induced nanomaterials in areas such as rechargeable batteries, supercapacitors, solar cells, and catalysis.
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