Center for Materials Science, Zewail City of Science and Technology , Sheikh Zayed Dist., 12588 Giza, Egypt.
Bernal Institute, Department of Chemical Sciences, University of Limerick , Limerick V94 T9PX, Ireland.
ACS Appl Mater Interfaces. 2017 Dec 20;9(50):43520-43528. doi: 10.1021/acsami.7b15095. Epub 2017 Dec 11.
Representative compounds from three classes of microporous solids, namely, metal-organic frameworks (MOFs), hybrid ultra-microporous materials (HUMs), and porous-organic polymers (POPs), were investigated for their nitric oxide gas uptake and release behavior. Low-pressure sorption studies indicated strong chemisorption of NO on the free amine groups decorating the MOF UiO-66-NH when compared to its non-amine-functionalized parent. The HUMs demonstrated reversible physisorption within the low-pressure regime, but interestingly in one case there was evidence for chemisorption following pressurization with NO at 10 bar. Significant release of chemisorbed NO from the UiO-66-NH and one of the HUMs was triggered by addition of acid to the medium, a pH change from 7.4 to 5.4 being sufficient to trigger NO release. An imidazole-based POP exhibited chemisorption of NO at high pressure wherein the ring basicity facilitated both NO uptake and spontaneous release upon contact with the aqueous release medium.
研究了三类微孔固体(金属-有机骨架(MOFs)、混合超微孔材料(HUMs)和多孔有机聚合物(POPs))的代表化合物,以研究其一氧化氮气体的吸收和释放行为。与未胺功能化的母体相比,低压吸附研究表明,MOF UiO-66-NH 上的游离胺基对 NO 具有强烈的化学吸附。HUMs 在低压范围内表现出可逆的物理吸附,但有趣的是,在一种情况下,在 10 巴下用 NO 加压后有化学吸附的证据。向介质中添加酸会触发 UiO-66-NH 和其中一种 HUM 中化学吸附的 NO 大量释放,pH 值从 7.4 变为 5.4 足以触发 NO 释放。基于咪唑的 POP 在高压下表现出对 NO 的化学吸附,其中环碱性有利于在与水释放介质接触时吸收和自发释放 NO。