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Thermal Diffusivity of a Single Carbon Nanocoil: Uncovering the Correlation with Temperature and Domain Size

机译:单个碳纳米线圈的热扩散率:揭示与温度和畴尺寸的相关性

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The helical geometries and polycrystalline-amorphous structure of carbon nanocoils (CNCs), an exotic class of low-dimensional carbon nanostructures, distinguish them from carbon nanotubes and graphene. These distinct structures result in very different energy transport from that in carbon nanotubes and graphene, leading to important roles in applications as wave absorbers, near-infrared sensors, and nanoelectromechanical sensors. Here we report a systematic study of the thermal diffusivity (alpha) and conductivity (kappa) of CNCs from 290 to 10 K and uncover their property structure aspects. Our room-temperature alpha study reveals a correlation between alpha and the line diameter (d): alpha = (5.43 X 10(4) X e(-d/37.7) + 9.5) X 10(-7) m(2)/s. Combined with the Raman-based grain size (L-a) characterization, alpha and L-a are correlated as alpha = [81.2 X (L-a - 3.32)(1.5) + 9.5] X 10(-7) m(2)/s. With temperature decreasing from 290 K to 10 K, alpha has a 1-1.6-fold increase, and kappa shows a peak around 75 K. To best understand the defect level and polycrystalline amorphous structure of CNCs, the thermal reffusivity (Theta = alpha(-1)) of CNCs is studied and compared with that of graphite and graphene foam from 290 K down to 10 K. Very interestingly, CNC's Theta linearly decreases with decreased temperature, while Theta of graphite and graphene foam have an exponential decrease. The extrapolated 0 K-limit Theta is determined by low-momentum phonon scattering and gives a structure domain size of CNC samples (d = 455, 353, and 334 nm) of 1.28, 2.03 and 3.24 nm. These sizes are coherent with the X-ray diffraction results (3.5 nm) and the Raman spectroscopy study and confirm the correlation among d, L-a, and alpha.
机译:碳纳米线圈(CNC)的螺旋几何形状和多晶无定形结构是一类奇特的低维碳纳米结构,可将它们与碳纳米管和石墨烯区分开。这些不同的结构导致与碳纳米管和石墨烯的能量传输截然不同,从而在应用中扮演重要角色,如吸波器,近红外传感器和纳米机电传感器。在这里,我们报告了从290到10 K的CNC的热扩散率(alpha)和电导率(kappa)的系统研究,并揭示了它们的特性结构方面。我们的室温alpha研究揭示了alpha与线径(d)之间的相关性:alpha =(5.43 X 10(4)X e(-d / 37.7)+ 9.5)X 10(-7)m(2)/ s。结合基于拉曼的晶粒尺寸(L-a)表征,将alpha和L-a关联为alpha = [81.2 X(L-a-3.32)(1.5)+ 9.5] X 10(-7)m(2)/ s。随着温度从290 K降低到10 K,α升高了1-1.6倍,而kappa则在75 K附近出现了一个峰值。为了最好地了解CNC的缺陷水平和多晶非晶结构,热导率(Theta = alpha(研究了-1))的CNCs,并将其与从290 K降至10 K的石墨和石墨烯泡沫进行比较。非常有趣的是,CNC的Theta随着温度降低而线性减小,而石墨和石墨烯泡沫的Theta呈指数下降。通过低动量声子散射确定外推的0 K极限Theta,得出的CNC样品(d = 455、353和334 nm)的结构域尺寸为1.28、2.03和3.24 nm。这些大小与X射线衍射结果(3.5 nm)和拉曼光谱研究一致,并证实了d,L-a和α之间的相关性。

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