Low-Temperature Synthesis of Weakly Confined Carbyne inside Single-Walled Carbon Nanotubes

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Hauptverfasser: Zhang, Bo-Wen, Qiu, Xi-Yang, Ma, Yicheng, Hu, Qingmei, Fitó-Parera, Aina, Kohata, Ikuma, Feng, Ya, Zheng, Yongjia, Zhang, Chiyu, Matsuo, Yutaka, Wang, YuHuang, Chiashi, Shohei, Otsuka, Keigo, Xiang, Rong, Levshov, Dmitry I., Cambré, Sofie, Wenseleers, Wim, Rotkin, Slava V., Maruyama, Shigeo
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Veröffentlicht: 2024
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author Zhang, Bo-Wen
Qiu, Xi-Yang
Ma, Yicheng
Hu, Qingmei
Fitó-Parera, Aina
Kohata, Ikuma
Feng, Ya
Zheng, Yongjia
Zhang, Chiyu
Matsuo, Yutaka
Wang, YuHuang
Chiashi, Shohei
Otsuka, Keigo
Xiang, Rong
Levshov, Dmitry I.
Cambré, Sofie
Wenseleers, Wim
Rotkin, Slava V.
Maruyama, Shigeo
author_facet Zhang, Bo-Wen
Qiu, Xi-Yang
Ma, Yicheng
Hu, Qingmei
Fitó-Parera, Aina
Kohata, Ikuma
Feng, Ya
Zheng, Yongjia
Zhang, Chiyu
Matsuo, Yutaka
Wang, YuHuang
Chiashi, Shohei
Otsuka, Keigo
Xiang, Rong
Levshov, Dmitry I.
Cambré, Sofie
Wenseleers, Wim
Rotkin, Slava V.
Maruyama, Shigeo
contents Carbyne, a one-dimensional (1D) carbon allotrope with alternating triple and single bonds, has the highest known mechanical strength but is unstable to bending, limiting synthesis to short linear chains. Encapsulation within carbon nanotubes (CNTs) stabilizes carbyne, forming confined carbyne (CC), thus enabling further research concerning attractive 1D physics and materials properties of carbyne. While CC has been synthesized in multi-walled CNTs (MWCNTs) using the arc-discharge method and in double-walled CNTs (DWCNTs) via high-temperature high-vacuum (HTHV) method, synthesis in single-walled CNTs (SWCNTs) has been challenging due to their fragility under such conditions. In this work, we report a low-temperature method to synthesize CC inside SWCNTs (CC@SWCNT). By annealing SWCNTs containing ammonium deoxycholate (ADC) at 400°C, ADC is converted into CC without damaging the SWCNTs. Raman spectroscopy revealed a strong CC phonon (CC-mode) peak at 1860-1870 cm^-1, much stronger than the SWCNT G-band peak, confirming a high fraction of CC in the resulting material. The Raman mapping result showed the uniformity of the CC-mode signal across the entire film sample, proving the high efficiency of this method in synthesizing CC in every SWCNT of appropriate size. Notably, the CC-mode peaks of CC@SWCNT (above 1860 cm^-1) are higher than those reported in previous CC@CNT samples (mostly less than 1856 cm^-1). This is attributed to larger SWCNT diameters (over 0.95 nm) used in this study, compared to the typical 0.6-0.8 nm range. Larger diameters result in reduced confinement, allowing carbyne to closely resemble free-standing carbyne while remaining stabilized. This low-temperature synthesis of long-chain, nearly free-standing carbyne within large-diameter SWCNTs offers new opportunities for exploring 1D physics and the unique properties of carbyne for potential applications.
format Preprint
id arxiv_https___arxiv_org_abs_2411_18899
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Low-Temperature Synthesis of Weakly Confined Carbyne inside Single-Walled Carbon Nanotubes
Zhang, Bo-Wen
Qiu, Xi-Yang
Ma, Yicheng
Hu, Qingmei
Fitó-Parera, Aina
Kohata, Ikuma
Feng, Ya
Zheng, Yongjia
Zhang, Chiyu
Matsuo, Yutaka
Wang, YuHuang
Chiashi, Shohei
Otsuka, Keigo
Xiang, Rong
Levshov, Dmitry I.
Cambré, Sofie
Wenseleers, Wim
Rotkin, Slava V.
Maruyama, Shigeo
Chemical Physics
Carbyne, a one-dimensional (1D) carbon allotrope with alternating triple and single bonds, has the highest known mechanical strength but is unstable to bending, limiting synthesis to short linear chains. Encapsulation within carbon nanotubes (CNTs) stabilizes carbyne, forming confined carbyne (CC), thus enabling further research concerning attractive 1D physics and materials properties of carbyne. While CC has been synthesized in multi-walled CNTs (MWCNTs) using the arc-discharge method and in double-walled CNTs (DWCNTs) via high-temperature high-vacuum (HTHV) method, synthesis in single-walled CNTs (SWCNTs) has been challenging due to their fragility under such conditions. In this work, we report a low-temperature method to synthesize CC inside SWCNTs (CC@SWCNT). By annealing SWCNTs containing ammonium deoxycholate (ADC) at 400°C, ADC is converted into CC without damaging the SWCNTs. Raman spectroscopy revealed a strong CC phonon (CC-mode) peak at 1860-1870 cm^-1, much stronger than the SWCNT G-band peak, confirming a high fraction of CC in the resulting material. The Raman mapping result showed the uniformity of the CC-mode signal across the entire film sample, proving the high efficiency of this method in synthesizing CC in every SWCNT of appropriate size. Notably, the CC-mode peaks of CC@SWCNT (above 1860 cm^-1) are higher than those reported in previous CC@CNT samples (mostly less than 1856 cm^-1). This is attributed to larger SWCNT diameters (over 0.95 nm) used in this study, compared to the typical 0.6-0.8 nm range. Larger diameters result in reduced confinement, allowing carbyne to closely resemble free-standing carbyne while remaining stabilized. This low-temperature synthesis of long-chain, nearly free-standing carbyne within large-diameter SWCNTs offers new opportunities for exploring 1D physics and the unique properties of carbyne for potential applications.
title Low-Temperature Synthesis of Weakly Confined Carbyne inside Single-Walled Carbon Nanotubes
topic Chemical Physics
url https://arxiv.org/abs/2411.18899