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作 者:李江涛[1] 刘书静[1,2] 顾芳[1] 王海军[1,3]
机构地区:[1]河北大学化学与环境科学学院,保定071002 [2]河北农业大学理学院,保定071001 [3]河北大学河北省化学生物学重点实验室,保定071002
出 处:《高等学校化学学报》2016年第9期1710-1715,共6页Chemical Journal of Chinese Universities
基 金:国家自然科学基金(批准号:21374028;21306034);河北省自然科学基金(批准号:B2014201103);河北省高等学校科学技术研究项目(批准号:QN20131079);河北省青年拔尖人才项目资助~~
摘 要:集中讨论了球形微腔表面对腔中氢键流体相态结构的调控机制.为了揭示微腔表面对腔中氢键流体相平衡的影响,首先根据吸附-解吸附原理并利用经典流体的密度泛函理论计算了微腔中氢键流体的平衡密度分布,进而通过吸附-解吸附等温线及巨势等温线绘制出体系的相图.在此基础上,重点考察了球腔尺寸、表面作用强度和作用力程对氢键流体毛细凝聚及层化转变的影响.结果表明,这些因素可以有效地调控体系毛细凝聚和层化转变的临界约化温度、临界密度和相区大小等特征,从而阐明了表面调控的主要机制.研究结果为设计相关吸附材料提供了理论参考.The effect of surface regulation on the phase behavior of hydrogen bonding( HB) fluid confined in a nano-spherical cavity was investigated by phase equilibrium thermodynamics. We tried to reveal the important role of cavity surface playing in the adsorption-desorption transition of confined HB fluid when the fluid-surface interaction is a square-well potential. In this study,density functional theory for classical fluids was used together with the modified fundamental measure theory. It was found that the cavity surface could give rise to significant effects on the critical temperatures,critical densities and phase regions of layering transition and capillary condensation. As a result,one can regulate the phase equilibria and aggregated state of the HB fluid by changing the strength and range of fluid-surface interaction and the radius of spherical cavity. It is expected that the present study is helpful to design related adsorption materials or to study the phase behavior of nanofluids.
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