Wood-based superblack

被引:0
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作者
Bin Zhao
Xuetong Shi
Sergei Khakalo
Yang Meng
Arttu Miettinen
Tuomas Turpeinen
Shuyi Mi
Zhipei Sun
Alexey Khakalo
Orlando J. Rojas
Bruno D. Mattos
机构
[1] Aalto University,Department of Bioproducts and Biosystems, School of Chemical Engineering
[2] The University of British Columbia,Bioproduct Institute
[3] School of Engineering,Department of Civil Engineering
[4] Aalto University,Integrated Computational Materials Engineering
[5] VTT Technical Research Centre of Finland Ltd,Faculty of Chemical Engineering
[6] Kunming University of Science and Technology,Department of Physics
[7] University of Jyvaskyla,Fiber Web Processes
[8] VTT Technical Research Centre of Finland Ltd,Department of Electronics and Nanoengineering
[9] Aalto University,QTF Centre of Excellence, Department of Applied Physics
[10] Aalto University,Cellulose Coatings and Films
[11] VTT Technical Research Centre of Finland Ltd,undefined
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摘要
Light is a powerful and sustainable resource, but it can be detrimental to the performance and longevity of optical devices. Materials with near-zero light reflectance, i.e. superblack materials, are sought to improve the performance of several light-centered technologies. Here we report a simple top-down strategy, guided by computational methods, to develop robust superblack materials following metal-free wood delignification and carbonization (1500 °C). Subwavelength severed cells evolve under shrinkage stresses, yielding vertically aligned carbon microfiber arrays with a thickness of ~100 µm and light reflectance as low as 0.36% and independent of the incidence angle. The formation of such structures is rationalized based on delignification method, lignin content, carbonization temperature and wood density. Moreover, our measurements indicate a laser beam reflectivity lower than commercial light stoppers in current use. Overall, the wood-based superblack material is introduced as a mechanically robust surrogate for microfabricated carbon nanotube arrays.
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