Anas Muhammad, Zhao Yang, Saed Mohammad A, Ziegler Kirk J, Green Micah J
Artie McFerrin Department of Chemical Engineering, Texas A&M University, College Station, TX, USA.
Nanoscale. 2019 May 16;11(19):9617-9625. doi: 10.1039/c9nr01600g.
Here we report the effect of metallic (m-) and semiconducting (s-) properties of single-walled carbon nanotubes (SWCNTs) on the response of SWCNT films to radio frequency (RF) heating. We separated high-purity m- and s-SWCNTs from an initial SWCNTs mixture and prepared thin films using vacuum filtration method. The areal density of the films is 9.6 μg cm-2, and the DC conductivities are in the range of 7800-49 000 S m-1. We show rapid and non-contact Joule heating of films using a fringing-field RF applicator, and we observe maximum heating rates in the frequency range of 60-70 MHz. We determine that the more conductive m-SWCNT films reflect RF fields and heat at a maximum rate of 1.51 °C s-1 compared to maximum heating rate of 25.6 °C s-1 for s-SWCNT films. However, m-SWCNTs heat up faster than s-SWCNTs when dispersed in a dielectric medium. Our results confirm the non-monotonic relationship between RF heating rate and conductivity for CNT-based materials such that conductivity is required for heating but high values are correlated with reflections. Our findings also suggest that RF heating could be a possible metric for evaluating film purity because impurities in the films affect the conductivity and thus RF heating rate. We anticipate that RF heating may occur in SWCNT-based electronics and affect their performance.
在此,我们报告了单壁碳纳米管(SWCNT)的金属(m-)和半导体(s-)特性对SWCNT薄膜射频(RF)加热响应的影响。我们从初始的SWCNT混合物中分离出高纯度的m-和s-SWCNT,并使用真空过滤法制备薄膜。薄膜的面密度为9.6 μg cm-2,直流电导率在7800 - 49000 S m-1范围内。我们使用边缘场RF施加器展示了薄膜的快速非接触焦耳加热,并观察到在频率范围为60 - 70 MHz时的最大加热速率。我们确定,导电性更强的m-SWCNT薄膜反射RF场,最大加热速率为1.51 °C s-1,而s-SWCNT薄膜的最大加热速率为25.6 °C s-1。然而,当m-SWCNT分散在介电介质中时,其升温速度比s-SWCNT快。我们的结果证实了基于碳纳米管的材料的RF加热速率与电导率之间的非单调关系,即加热需要电导率,但高电导率与反射相关。我们的研究结果还表明,RF加热可能是评估薄膜纯度的一种可行指标,因为薄膜中的杂质会影响电导率,进而影响RF加热速率。我们预计RF加热可能会在基于SWCNT的电子产品中发生并影响其性能。