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通过瞬态X射线衍射评估的氮化钛纳米颗粒的光热行为。

Photothermal behaviour of titanium nitride nanoparticles evaluated by transient X-ray diffraction.

作者信息

Diroll Benjamin T, Brumberg Alexandra, Leonard Ariel A, Panuganti Shobhana, Watkins Nicolas E, Cuthriell Shelby A, Harvey Samantha M, Kinigstein Eli D, Yu Jin, Zhang Xiaoyi, Kanatzidis Mercouri G, Wasielewski Michael R, Chen Lin X, Schaller Richard D

机构信息

Center for Nanoscale Materials, Argonne National Laboratory, Lemont, IL 60439, USA.

Department of Chemistry, Northwestern University, Evanston, IL 60208, USA.

出版信息

Nanoscale. 2021 Feb 4;13(4):2658-2664. doi: 10.1039/d0nr08202c.

DOI:10.1039/d0nr08202c
PMID:33496308
Abstract

The photothermal properties of metal nitrides have recently received significant attention owing to diverse applications in solar energy conversion, photothermal therapies, photoreactions, and thermochromic windows. Here, the photothermal response of titanium nitride nanoparticles is examined using transient X-ray diffraction, in which optical excitation is synchronized with X-ray pulses to characterize dynamic changes in the TiN lattice. Photoinduced diffraction data is quantitatively analyzed to determine increases in the TiN lattice spacing, which are furthermore calibrated against static, temperature-dependent diffraction patterns of the same samples. Measurements of 20 nm and 50 nm diameter TiN nanoparticles reveal transient lattice heating from room temperature up to ∼175 °C for the highest pump fluences investigated here. Increasing excitation intensity drives sublinear increases in lattice temperature, due to increased heat capacity at the higher effective temperatures achieved at higher powers. Temporal dynamics show that higher excitation intensity drives not only higher lattice temperatures, but also unexpectedly slower cooling of the TiN nanoparticles, which is attributed to heating of the solvent proximal to the nanoparticle surface.

摘要

由于在太阳能转换、光热疗法、光化学反应和热致变色窗等方面的多种应用,金属氮化物的光热特性最近受到了广泛关注。在此,利用瞬态X射线衍射研究了氮化钛纳米颗粒的光热响应,其中光激发与X射线脉冲同步,以表征TiN晶格的动态变化。对光致衍射数据进行定量分析,以确定TiN晶格间距的增加,并进一步根据相同样品的静态、温度依赖衍射图样进行校准。对直径为20 nm和50 nm的TiN纳米颗粒的测量表明,在此研究的最高泵浦通量下,晶格从室温瞬态加热至约175°C。由于在较高功率下达到的较高有效温度下热容量增加,激发强度的增加导致晶格温度呈亚线性增加。时间动态表明,较高的激发强度不仅会导致较高的晶格温度,还会意外地使TiN纳米颗粒的冷却速度变慢,这归因于纳米颗粒表面附近溶剂的加热。

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