光热治疗
材料科学
气凝胶
光热效应
纳米技术
石墨烯
吸收(声学)
光散射
纳米材料
光电子学
散射
光学
复合材料
物理
作者
Lena M. Saure,Niklas Kohlmann,Haoyi Qiu,Shwetha K. Shetty,Ali Shaygan Nia,Narayanan Ravishankar,Xinliang Feng,Alexander Szameit,Lorenz Kienle,Rainer Adelung,Fabian Schütt
出处
期刊:ACS Nano
[American Chemical Society]
日期:2023-11-14
卷期号:17 (22): 22444-22455
标识
DOI:10.1021/acsnano.3c05329
摘要
Conversion of light into heat is essential for a broad range of technologies such as solar thermal heating, catalysis and desalination. Three-dimensional (3D) carbon nanomaterial-based aerogels have been shown to hold great promise as photothermal transducer materials. However, until now, their light-to-heat conversion is limited by near-surface absorption, resulting in a strong heat localization only at the illuminated surface region, while most of the aerogel volume remains unused. We present a fabrication concept for highly porous (>99.9%) photothermal hybrid aeromaterials, which enable an ultrarapid and volumetric photothermal response with an enhancement by a factor of around 2.5 compared to the pristine variant. The hybrid aeromaterial is based on strongly light-scattering framework structures composed of interconnected hollow silicon dioxide (SiO2) microtubes, which are functionalized with extremely low amounts (in order of a few μg cm-3) of reduced graphene oxide (rGO) nanosheets, acting as photothermal agents. Tailoring the density of rGO within the framework structure enables us to control both light scattering and light absorption and thus the volumetric photothermal response. We further show that by rapid and repeatable gas activation, these transducer materials expand the field of photothermal applications, like untethered light-powered and light-controlled microfluidic pumps and soft pneumatic actuators.
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