化学
控制重构
部分
位阻效应
连接器
表面改性
吸附剂
可控性
组合化学
烟气
化学工程
涂层
工艺工程
概念证明
动力学
金属有机骨架
纳米技术
溶剂
物理吸附
吸附
作者
Jun-yu Ren,Zhaoqiang Zhang,Neng-Xiu Zhu,Kexin Yu,Xiansong Shi,He Li,Qixing Liu,Yogesh V. Joshi,Saifudin Abubakar,Dan Zhao,Jun-yu Ren,Zhaoqiang Zhang,Neng-Xiu Zhu,Kexin Yu,Xiansong Shi,He Li,Qixing Liu,Yogesh V. Joshi,Saifudin Abubakar,Dan Zhao
摘要
Exploration of molecularly engineered or polymer-based CO2 adsorbents for direct air capture (DAC) has plateaued, with diminishing returns from functionalization strategies. Inspired by protein folding, we propose a new dimension for CO2 sorbent discovery by structurally reconfiguring alkylamines into a polycyclic linker. The obtained dimeric butylamine linker is subsequently incorporated into a metal-organic framework, NUS-110, via a mechanochemical approach. NUS-110 exhibits a DAC capacity of 0.89 mmol/g under dry conditions (400 ppm CO2) and 1.35 mmol/g under humid conditions (30% RH). Notably, NUS-110 shows strong water tolerance during DAC, attributable to its characteristic sigmoidal adsorption behavior. Furthermore, the dimeric butylamine moiety exhibits exceptional oxidative stability, maintaining stable performance across 20 DAC cycles due to its optimized steric configuration. Dynamic breakthrough experiments confirm the practical viability, with humid conditions improving the kinetics via water-assisted reaction pathways. This study introduces a paradigm shift in the development of DAC sorbents, featuring enhanced humidity tolerance and oxidative resilience to improve their suitability for practical deployment.
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