McGuirk C Michael, Runčevski Tomče, Oktawiec Julia, Turkiewicz Ari, Taylor Mercedes K, Long Jeffrey R
Department of Chemistry , University of California , Berkeley , California 94720 , United States.
Materials Sciences Division , Lawrence Berkeley National Laboratory , Berkeley , California 94720 , United States.
J Am Chem Soc. 2018 Nov 21;140(46):15924-15933. doi: 10.1021/jacs.8b09631. Epub 2018 Nov 7.
Metal-organic frameworks that display step-shaped adsorption profiles arising from discrete pressure-induced phase changes are promising materials for applications in both high-capacity gas storage and energy-efficient gas separations. The thorough investigation of such materials through chemical diversification, gas adsorption measurements, and in situ structural characterization is therefore crucial for broadening their utility. We examine a series of isoreticular, flexible zeolitic imidazolate frameworks (ZIFs) of the type M(bim) (SOD; M = Zn (ZIF-7), Co (ZIF-9), Cd (CdIF-13); bim = benzimidazolate), and elucidate the effects of metal substitution on the pressure-responsive phase changes and the resulting CO and CH step positions, pre-step uptakes, and step capacities. Using ZIF-7 as a benchmark, we reexamine the poorly understood structural transition responsible for its adsorption steps and, through high-pressure adsorption measurements, verify that it displays a step in its CH adsorption isotherms. The ZIF-9 material is shown to undergo an analogous phase change, yielding adsorption steps for CO and CH with similar profiles and capacities to ZIF-7, but with shifted threshold pressures. Further, the Cd analogue CdIF-13 is reported here for the first time, and shown to display adsorption behavior distinct from both ZIF-7 and ZIF-9, with negligible pre-step adsorption, a ∼50% increase in CO and CH capacity, and dramatically higher threshold adsorption pressures. Remarkably, a single-crystal-to-single-crystal phase change to a pore-gated phase is also achieved with CdIF-13, providing insight into the phase change that yields step-shaped adsorption in these flexible ZIFs. Finally, we show that the endothermic phase change of these frameworks provides intrinsic heat management during gas adsorption.
由于离散的压力诱导相变而呈现出阶梯状吸附曲线的金属有机框架材料,在高容量气体存储和节能气体分离应用中都是很有前景的材料。因此,通过化学多样化、气体吸附测量和原位结构表征对这类材料进行深入研究,对于扩大其应用范围至关重要。我们研究了一系列同构的、柔性的沸石咪唑酯框架(ZIFs),即M(bim)(SOD结构;M = Zn(ZIF-7)、Co(ZIF-9)、Cd(CdIF-13);bim = 苯并咪唑酯),并阐明了金属取代对压力响应相变以及由此产生的CO和CH阶梯位置、阶梯前吸附量和阶梯容量的影响。以ZIF-7为基准,我们重新审视了对其吸附阶梯负责的理解不足的结构转变,并通过高压吸附测量,验证了它在CH吸附等温线上呈现出一个阶梯。结果表明,ZIF-9材料经历了类似的相变,产生了CO和CH的吸附阶梯,其曲线和容量与ZIF-7相似,但阈值压力有所偏移。此外,Cd类似物CdIF-13在此首次被报道,结果表明它表现出与ZIF-7和ZIF-9都不同的吸附行为,阶梯前吸附可忽略不计,CO和CH容量增加约50%,阈值吸附压力显著更高。值得注意的是,CdIF-13还实现了到孔门控相的单晶到单晶的相变,这为这些柔性ZIFs中产生阶梯状吸附的相变提供了深入了解。最后,我们表明这些框架的吸热相变在气体吸附过程中提供了内在的热管理。