共价有机骨架
吸附
解吸
甲烷
天然气
化学工程
化学
碳足迹
吸附
多孔性
材料科学
有机化学
温室气体
生态学
生物
工程类
作者
Kiran Asokan,Manoj Krishnat Patil,Shatabdi Porel Mukherjee,Sukumaran Santhosh Babu,T. Nandakumar
标识
DOI:10.1002/asia.202201012
摘要
Abstract In the current scenario of increased pollution and releasing toxic gases by burning petroleum products, switching to natural gas is more promising for reducing CO 2 emissions and air pollutants. Hence, research on Liquefied Natural Gas and Compressed Natural Gas is gaining more value. However, natural gas primarily consists of CH 4 , which has less energy density than conventional fuels. Interestingly, since the C−H ratio of CH 4 gas is 1 : 4, it is easily combustible, gives less carbon footprint, and reduces unburnt hydrocarbon pollution. Hence, research on storing and transporting CH 4 has utmost importance, and porous materials are one of the suitable candidates for storing CH 4 . Herein we report the scalable synthesis of highly porous and crystalline covalent organic frameworks for storing CH 4 at room temperature and pressure. Two COFs, namely, Tp‐Azo and Tp‐Azo‐BD(Me) 2 , synthesized in 1 kg at ∼45 g batch scale using a Planetary mixer, displayed a maximum BET surface area of around 3345 m 2 /g, and 2342 m 2 /g and CH 4 storage of 174.10 cc/cc and 151 cc/cc, respectively. A comparison of the CH 4 sorption of Tp‐Azo and Tp‐Azo‐BD(Me) 2 COFs synthesized in different batches has a variation of only ±5 cc/cc and shows the consistency in bulk scale synthesis of COFs. The cyclic equilibrium CH 4 adsorption studies showed the COFs are stable with consistent CH 4 adsorption and desorption cycles. The present study is a step towards the scalable mechanochemical synthesis of COFs for gas storage applications.
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