Optical visualization and polarized light absorption of the single-wall carbon nanotube to verify intrinsic thermal applications

被引:0
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作者
Xiao Zhang
Li Song
Le Cai
Xuezeng Tian
Qiang Zhang
Xiaoying Qi
Wenbin Zhou
Nan Zhang
Feng Yang
Qingxia Fan
Yanchun Wang
Huaping Liu
Xuedong Bai
Weiya Zhou
Sishen Xie
机构
[1] Beijing National Laboratory for Condensed Matter Physics,
[2] Institute of Physics,undefined
[3] Chinese Academy of Sciences,undefined
[4] National Synchrotron Radiation Laboratory,undefined
[5] University of Science and Technology of China,undefined
[6] National Center for Nanoscience and Technology,undefined
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关键词
carbon nanotube; optical visualization; polarized laser; resonant absorption;
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摘要
The predicted extraordinary properties of carbon nanotubes (CNTs) from theoretical calculations have great potential for many applications. However, reliable experimental determination of intrinsic properties at the single-tube level is currently a matter of concern, and many challenges remain because of the unhandled and nanoscale size of individual nanotubes. Here, we demonstrated a prototype to detect the intrinsic thermal conductivity of the single-wall carbon nanotube (SWCNT) and verify the significant non-resonant optical absorption behavior on tiny nanotubes by integrating the nanotube and ice into a new core-shell design. In particular, a reversible optical visualization method based on the individual suspended ultra-long SWCNT was first developed by wrapping a nanotube with ice in the cryogenic air environment. The light-induced thermal effect on the hybrid core-shell structure was used to melt the ice shell, which subsequently acted as a temperature sensor to verify the intrinsic thermal conductivity of the core-like nanotube. More interestingly, we successfully determined for the first time the thermal response phenomenon of the tiny absorption cross section in SWCNT in the vertical-polarization configuration and the significant non-resonant absorption behavior in the parallel-polarization configuration. These investigations will provide a better understanding for the unique optical behaviors of CNT and enable the detection of intrinsic properties of various one-dimensional nanostructures such as nanotubes, nanowires, and nanoribbons.
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页码:e318 / e318
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