Toyama Yoshifumi, Nakamura Takumu, Horikawa Yushin, Morinaka Yuta, Ono Yohei, Yagi Akiko, Itami Kenichiro, Ito Hideto
Graduate School of Science, Nagoya University Chikusa Nagoya 464-8602 Japan.
Tokyo Research Center, Advanced Materials Research Laboratory, Advanced Integration Research Center, Research Division, Tosoh Corporation 2743-1 Hayakawa Ayase Kanagawa 252-1123 Japan.
Chem Sci. 2025 Apr 17. doi: 10.1039/d5sc01489a.
Hydrogenated nanographene has attracted attention as a new class of nanocarbon material owing to its potential applications in various research fields. However, the synthesis of periphery-hydrogenated nanographenes or polycyclic aromatic hydrocarbons (PAHs) is a significant challenge because of the harsh conditions and poor solubility of the starting materials. Conventional solution-state conditions require high-pressure hydrogen gas and lengthy reaction times. In this study, we developed a novel approach utilizing rhodium-catalyzed mechanochemical transfer hydrogenation, which enables hydrogenation without using hydrogen gas. Various hydrogenated PAHs were rapidly obtained using a simple protocol under ambient atmosphere and air, with one PAH showcasing intriguing properties such as aggregation-induced emission. Thus, the demonstrated mechanochemical hydrogenation method is expected to contribute to the rapid and efficient synthesis of a novel class of sp/sp-carbon-conjugated hydrocarbons.
氢化纳米石墨烯作为一类新型的纳米碳材料,因其在各个研究领域的潜在应用而备受关注。然而,由于起始原料条件苛刻且溶解性差,合成周边氢化纳米石墨烯或多环芳烃(PAHs)是一项重大挑战。传统的溶液状态条件需要高压氢气和较长的反应时间。在本研究中,我们开发了一种利用铑催化机械化学转移氢化的新方法,该方法无需使用氢气就能实现氢化。在环境大气和空气中,通过简单的方案可以快速获得各种氢化PAHs,其中一种PAH展现出如聚集诱导发光等有趣的性质。因此,所展示的机械化学氢化方法有望为新型sp/sp碳共轭烃的快速高效合成做出贡献。