热光电伏打
材料科学
纳米柱
发射率
光电子学
共发射极
选择性表面
等离子体子
制作
摩尔吸收率
光学
电介质
纳米结构
纳米技术
病理
物理
医学
替代医学
作者
Anisha Chirumamilla,Yuanqing Yang,Maria H. Salazar,Fei Ding,Deyong Wang,Peter Kjær Kristensen,Peter Fojan,Sergey I. Bozhevolnyi,Duncan S. Sutherland,Kjeld Pedersen,Manohar Chirumamilla
标识
DOI:10.1016/j.mtphys.2021.100503
摘要
High-temperature stable emitters with spectral selective functionality are an absolute condition for efficient conversion of thermal radiation into electricity using thermophotovoltaic (TPV) systems. Usually, spectral selective emitters are made up of multilayered materials or geometrical structures resulting from complex fabrication processes. Here, we report a spectrally selective emitter based on a single metal layer coating of molybdenum (Mo) over a 3D dielectric pillar geometry. 3D Mo nanopillars are fabricated using large-area and cost-effective hole-mask colloidal lithography. These nanostructures show an absorptivity/emissivity of 95% below the cut-off wavelength of an InGaAsSb PV cell at 2.25 μm, and a sharp decline in absorptivity/emissivity in the near-infrared regions, approaching a low emissivity of 10%. The 3D Mo nanopillars show outstanding thermal/structural stability up to 1473 K for 24 h duration under Ar atmosphere and polarization and angle invariance up to 60° incidence angles. With a low-cost and scalable fabrication method, 3D Mo nanostructures provide tremendous opportunities in TPV and high temperature photonic/plasmonic applications.
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