Ahmad Tausif, Iqbal Jibran, Bustam Mohamad Azmi, Babar Muhammad, Tahir Muhammad Bilal, Sagir Muhammad, Irfan Muhammad, Anwaar Asghar Hafiz Muhammad, Hassan Afaq, Riaz Asim, Chuah Lai Fatt, Bokhari Awais, Mubashir Muhammad, Show Pau Loke
Institute of Chemical & Environmental Engineering, Khwaja Fareed University of Engineering and Information Technology, Rahimyar Khan, 64200, Pakistan.
College of Natural and Health Sciences, Zayed University, P.O. Box 144534, Abu Dhabi, United Arab Emirates.
Environ Res. 2023 Apr 1;222:115314. doi: 10.1016/j.envres.2023.115314. Epub 2023 Feb 3.
The critical challenge being faced by our current modern society on a global scale is to reduce the surging effects of climate change and global warming, being caused by anthropogenic emissions of CO in the environment. Present study reports the surface driven adsorption potential of deep eutectic solvents (DESs) surface functionalized cerium oxide nanoparticles (CeNPs) for low pressure CO separation. The phosphonium based DESs were prepared using tetra butyl phosphoniumbromide as hydrogen bond acceptor (HBA) and 6 acids as hydrogen bond donors (HBDs). The as-developed DESs were characterized and employed for the surface functionalization of CeNPs with their subsequent utilization in adsorption-based CO adsorption. The synthesis of as-prepared DESs was confirmed through FTIR measurements and absence of precipitates, revealed through visual observations. It was found that DES6 surface functionalized CeNPs demonstrated 27% higher adsorption performance for CO capturing. On the contrary, DES3 coated CeNPs exhibited the least adsorption progress for CO separation. The higher adsorption performance associated with DES6 coated CeNPs was due to enhanced surface affinity with CO molecules that must have facilitated the mass transport characteristics and resulted an enhancement in CO adsorption performance. Carboxylic groups could have generated an electric field inside the pores to attract more polarizable adsorbates including CO, are responsible for the relatively high values of CO2 adsorption. The quadruple movement of the CO molecules with the electron-deficient and pluralizable nature led to the enhancement of the interactive forces between the CO molecules and the CeNPs decorated with the carboxylic group hydrogen bond donor rich DES. The current findings may disclose the new research horizons and theoretical guidance for reduction in the environmental effects associated with uncontrolled CO emission via employing DES surface coated potential CeNPs.
当前现代社会在全球范围内面临的关键挑战是减少气候变化和全球变暖的激增影响,这些影响是由环境中人为排放的一氧化碳造成的。本研究报告了用于低压一氧化碳分离的表面功能化氧化铈纳米颗粒(CeNPs)的深层共熔溶剂(DESs)的表面驱动吸附潜力。使用四丁基溴化鏻作为氢键受体(HBA)和6种酸作为氢键供体(HBDs)制备了基于鏻的DESs。对所开发的DESs进行了表征,并将其用于CeNPs的表面功能化,随后将其用于基于吸附的一氧化碳吸附。通过傅里叶变换红外光谱(FTIR)测量证实了所制备的DESs的合成,并通过目视观察发现没有沉淀。结果发现,DES6表面功能化的CeNPs对一氧化碳捕获的吸附性能提高了27%。相反,DES3包覆的CeNPs在一氧化碳分离方面的吸附进展最小。与DES6包覆的CeNPs相关的较高吸附性能是由于与一氧化碳分子的表面亲和力增强,这必定促进了传质特性并导致一氧化碳吸附性能增强。羧基可能在孔内产生了电场,以吸引包括一氧化碳在内的更多可极化吸附质,这是二氧化碳吸附值相对较高的原因。一氧化碳分子具有缺电子和可极化的性质,其四重运动导致一氧化碳分子与用富含羧基氢键供体的DES修饰的CeNPs之间的相互作用力增强。当前的研究结果可能为通过使用DES表面包覆的潜在CeNPs减少与不受控制的一氧化碳排放相关的环境影响揭示新的研究视野和理论指导。