Jin Soyeon, Lee Jinwook, Kim Sunjeong, Kim Gyeong Chan, Yun Jung-Hoon, Kim Jooyoun
Department of Fashion and Textiles, Seoul National University Seoul 08826 Republic of Korea
Department of Future Convergence Engineering, Kongju National University Cheonan 31080 Republic of Korea.
RSC Adv. 2025 Apr 28;15(17):13583-13594. doi: 10.1039/d5ra01388g. eCollection 2025 Apr 22.
The efficient adsorption and removal of toxic gases, particularly ammonia (NH), remains a critical challenge in environmental management and industrial safety. Metal-organic frameworks (MOFs) have emerged as promising gas adsorbents due to their tunable structures and high surface area. However, the strong interaction between NH and MOFs poses challenges for the regeneration and reusability of MOF adsorbents, often requiring energy-intensive desorption methods. This study proposes a sustainable approach for regenerating adsorption sites for recyclable gas adsorbents. We present a facile method for the direct synthesis of Cu(HHTP) on a Cu mesh substrate (Cu(HHTP)@Cu), utilizing the Cu metal itself as a precursor to eliminate the need for external metal sources. The resulting Cu(HHTP)@Cu serves as a recyclable NH adsorbent, leveraging the π-conjugated hexahydroxytriphenylene (HHTP) ligand for photothermal conversion under sunlight irradiation, where photo-generated heat facilitates NH desorption. The study further explores the effect of an external voltage on the NH adsorption performance and crystalline structure of Cu(HHTP)@Cu. Our findings demonstrate that Cu(HHTP)@Cu achieves efficient NH desorption through a minimally invasive and energy-efficient mechanism, addressing the limitations of conventional adsorbents.
高效吸附和去除有毒气体,尤其是氨(NH₃),仍然是环境管理和工业安全领域的一项关键挑战。金属有机框架(MOFs)因其可调节的结构和高比表面积,已成为有前景的气体吸附剂。然而,NH₃与MOFs之间的强相互作用给MOF吸附剂的再生和可重复使用带来了挑战,通常需要耗能的解吸方法。本研究提出了一种可持续的方法来再生可回收气体吸附剂的吸附位点。我们展示了一种在铜网基底上直接合成Cu(HHTP)的简便方法(Cu(HHTP)@Cu),利用铜金属本身作为前驱体,无需外部金属源。所得的Cu(HHTP)@Cu作为一种可回收的NH₃吸附剂,利用π共轭的六羟基三亚苯(HHTP)配体在阳光照射下进行光热转换,光生热促进NH₃解吸。该研究进一步探讨了外部电压对Cu(HHTP)@Cu的NH₃吸附性能和晶体结构的影响。我们的研究结果表明,Cu(HHTP)@Cu通过微创且节能的机制实现了高效的NH₃解吸,解决了传统吸附剂的局限性。