Itoi Hiroyuki, Suzuki Ryutaro, Miyaji Masahiro, Matsuura Miku, Takagi Kazuki, Goto Yuka, Kameoka Satoshi, Nagai Yuto, Usami Takanori, Adachi Yuriho, Ishii Takafumi, Iwata Hiroyuki, Ohzawa Yoshimi
Department of Applied Chemistry, Faculty of Engineering, Aichi Institute of Technology, 1247 Yachigusa, Yakusa, Toyota 470-0392, Japan.
International Research and Education Center for Element Science Faculty of Science and Technology, Gunma University, 1-5-1 Tenjincho, Kiryu 376-8515, Gunma, Japan.
Langmuir. 2022 Oct 4;38(39):12024-12034. doi: 10.1021/acs.langmuir.2c01844. Epub 2022 Sep 21.
Norbornadiene (NBD) is adsorbed on activated carbon (AC), and the adsorbed NBD is polymerized within the pores of AC. Two kinds of ACs─AC-2 with only micropores of ∼2 nm and AC-4 with not only micropores but also mesopores below 4 nm─are examined to study the effects of the hybridized polynorbornadiene (PNBD) on the electric double-layer capacitor and hydrogen adsorption performance. Various measurements are performed to determine the form of the hybridized PNBD inside the pores of AC. Scanning and transmittance electron microscopy observations of the AC/PNBD hybrids confirm that PNBD is hybridized inside the pores of AC, and there is little PNBD on the surface of AC particles. The nitrogen adsorption/desorption measurement for the hybrids of AC-4 reveals that PNBD is not hybridized preferentially inside micropores rather than mesopores irrespective of the amount of PNBD. In addition, both micropore and mesopore volumes decrease at a constant rate with increasing amounts of PNBD. These results suggest that PNBD is hybridized not as a layer but as an agglomerate for both ACs, and the agglomerate delocalizes over the whole AC pores, which is supported by the results of electrochemical measurements and hydrogen adsorption behavior of the hybrids.
降冰片二烯(NBD)吸附在活性炭(AC)上,且吸附的NBD在AC的孔内发生聚合。研究了两种活性炭——仅具有约2nm微孔的AC - 2和不仅具有微孔而且具有低于4nm中孔的AC - 4,以考察杂化聚降冰片二烯(PNBD)对双电层电容器和氢吸附性能的影响。进行了各种测量以确定AC孔内杂化PNBD的形态。对AC/PNBD杂化物的扫描和透射电子显微镜观察证实,PNBD在AC的孔内发生了杂化,且AC颗粒表面几乎没有PNBD。对AC - 4杂化物的氮吸附/脱附测量表明,无论PNBD的量如何,PNBD并非优先在微孔而非中孔内杂化。此外,随着PNBD量的增加,微孔和中孔体积均以恒定速率减小。这些结果表明,对于两种活性炭,PNBD均不是以层状而是以团聚体形式杂化,且该团聚体在整个AC孔中离域,这得到了杂化物的电化学测量结果和氢吸附行为的支持。