Graduate School of EEWS, Korea Advanced Institute of Science and Technology (KAIST), Daejeon 305-701 (Republic of Korea).
Chemistry. 2014 Jan 13;20(3):772-80. doi: 10.1002/chem.201303493. Epub 2013 Dec 11.
A family of azo-bridged covalent organic polymers (azo-COPs) was synthesized through a catalyst-free direct coupling of aromatic nitro and amine compounds under basic conditions. The azo-COPs formed 3D nanoporous networks and exhibited surface areas up to 729.6 m(2) g(-1) , with a CO2 -uptake capacity as high as 2.55 mmol g(-1) at 273 K and 1 bar. Azo-COPs showed remarkable CO2 /N2 selectivities (95.6-165.2) at 298 K and 1 bar. Unlike any other porous material, CO2 /N2 selectivities of azo-COPs increase with rising temperature. It was found that azo-COPs show less than expected affinity towards N2 gas, thus making the framework "N2 -phobic", in relative terms. Our theoretical simulations indicate that the origin of this unusual behavior is associated with the larger entropic loss of N2 gas molecules upon their interaction with azo-groups. The effect of fused aromatic rings on the CO2 /N2 selectivity in azo-COPs is also demonstrated. Increasing the π-surface area resulted in an increase in the CO2 -philic nature of the framework, thus allowing us to reach a CO2 /N2 selectivity value of 307.7 at 323 K and 1 bar, which is the highest value reported to date. Hence, it is possible to combine the concepts of "CO2 -philicity" and "N2 -phobicity" for efficient CO2 capture and separation. Isosteric heats of CO2 adsorption for azo-COPs range from 24.8-32.1 kJ mol(-1) at ambient pressure. Azo-COPs are stable up to 350 °C in air and boiling water for a week. A promising cis/trans isomerization of azo-COPs for switchable porosity is also demonstrated, making way for a gated CO2 uptake.
通过在碱性条件下无催化剂直接偶联芳族硝基和胺化合物,合成了一系列偶氮桥联共价有机聚合物(azo-COPs)。所合成的 azo-COPs 形成了 3D 纳米多孔网络,比表面积高达 729.6 m(2) g(-1),在 273 K 和 1 bar 下的 CO2 吸附量高达 2.55 mmol g(-1)。在 298 K 和 1 bar 下,azo-COPs 表现出显著的 CO2 /N2 选择性(95.6-165.2)。与任何其他多孔材料不同,azo-COPs 的 CO2 /N2 选择性随温度升高而增加。研究发现,azo-COPs 对 N2 气体的亲和力低于预期,从而使该骨架在相对意义上“N2 憎性”。我们的理论模拟表明,这种异常行为的起源与 N2 气体分子与偶氮基团相互作用时较大的熵损失有关。还证明了稠合芳环对 azo-COPs 中 CO2 /N2 选择性的影响。增加 π-表面积导致骨架对 CO2 的亲合性增加,从而使我们在 323 K 和 1 bar 下达到 307.7 的 CO2 /N2 选择性值,这是迄今为止报道的最高值。因此,可以将“CO2 亲合性”和“N2 憎性”的概念结合起来,以实现高效的 CO2 捕获和分离。azo-COPs 的 CO2 吸附等焓在环境压力下为 24.8-32.1 kJ mol(-1)。azo-COPs 在空气中和沸水中稳定至 350℃,一周内保持稳定。还证明了 azo-COPs 的顺/反异构体化具有开关多孔性的潜力,为门控 CO2 吸收开辟了道路。