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2024, 08, v.52 2566-2574
串联扰动型金属有机框架玻璃的热诱导晶化及结构转变
基金项目(Foundation): 广西八桂英才项目(2019AC26001); 国家自然科学基金(U23A2080,22371173,22171075); 霍英东教育基金会高等院校青年教师基金(171110)
邮箱(Email): yinzheng@sust.edu.cn;kuangxj@glut.edu.cn;zmh@mailbox.gxnu.edu.cn;
DOI: 10.14062/j.issn.0454-5648.20240145
发布时间: 2024-08-15
出版时间: 2024-08-15
网络发布时间: 2024-05-21
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摘要:

晶化行为极大影响玻璃材料的加工赋形及力学、光、电等性能,但晶化过程中微观结构演变机制远不明晰;对于全新类别金属有机框架(MOF)玻璃,相关晶化及高温动态配位化学系统研究更为匮乏。动态高孔穴四重穿插钻石网型MOF–[Co(L1)2]4n,在水分子配位及热去除多层级协同扰动下可不经高温熔融直接玻璃化。作为首个串联扰动法获得的传统MOF成功玻璃化实例,热重和差热分析发现去水扰动不定形态MOF在Tg=560 K处发生玻璃化转变,过冷液体于558~586K间稳定,随后在Tc=597 K处发生明显晶化,并进一步在Td=695 K以上发生结构分解;原位变温(PXRD)跟踪并证实了MOF去水无定形→玻璃化→过冷液化→再晶化的相态演变过程;X射线全散射原子对分布函数(PDF)揭示了玻璃态及再晶化态样品的短–中–长程结构特征。基于CCDC数据库结构检索以及铜基同构MOF的合成,结合MOF玻璃晶化相高分辨PXRD谱的Rietveld拟合结构验证,确认了致密六重穿插钻石网MOF–[Co(L1)2]6n的生成。MOF过冷液体不同温度淬冷所制备玻璃保有气体可接触孔性并呈现温度依赖变化,揭示了相均一MOF过冷液体内部液态结构差异性。这一研究构建了MOF“晶态–扰动态–过冷液态–玻璃态–晶化态”多相结构演变有趣例证,揭示了MOF玻璃及其过冷液体独特的高温配位自识别和有序化结构自组装行为。

Abstract:

Introduction Metal-organic frameworks are a class of organic-inorganic hybrid and crystalline materials based on coordinatively bonded porous network.But the structure and function have been seldom investigated.The effective processing of MOF devices have always been hindered by the intrinsic feature of crystalline powders.The utilization of thermal rheology of glass material is expected to realize the effective preparation of grain-boundary-free and isotropic MOF glass membrane,which is one of the key goals of porous chemistry in the future.Different types of MOF glasses have been prepared by covering melt-quenching,mechanical or pressure treatment,bottom-up assembly in solution,ionic liquid-assisted melting and sequential perturbation.Nevertheless,the crystallization behavior of liquid and supercooled liquid greatly affects the processing and mechanical,optical,and electrical properties of glass materials,but the mechanism of microstructure evolution during the crystallization process is far from clear.It's even less clear on systematic study of the crystallization and high-temperature dynamic coordination chemistry for new MOF glass.Methods A highly porous and flexible MOF of[Co(L1)_2]_(4n) with 4-fold interpenetrated dia-net frameworks and another reference compound of Cu(L1)_2]_(6n) with 6-fold interpenetrated dia-net and dense frameworks,were synthesized by solvothermal reactions.The vapor treatment and subsequent thermal dehydration generated the h-CoL1 and dh-CoL1,respectively.The TG and DSC measurements were used to confirm the phase evolution from amorphous,through glass transition,to supercooled liquid,until either quenched glass or high-temperature re-crystallized phase.The in-suit and temperature dependent PXRD further confirmed the structure transformation process.X-ray total scattering atom pair distribution function spectra uncovered the short-middle-long range structure characters of both the glassy and re-crystallized MOFs.Infrared and Raman spectroscopy were used to analyze the coordination geometry changes among different states of MOF.The porosity of glassy g-CoL1 and recrystallized rec-CoL1 were investigated by using CO_2 adsorption–desorption curves at 195 K.Results and discussion The[Co(L1)_2]_(4n) can turn into glassy state directly without high-temperature melting,facilitated by the multi-level synergistic perturbations of water coordination and subsequent thermal removal.As the first successful example of glass generated from traditional MOF based on sequential perturbation.TG and DSC revealed a glass transition at T_g=560 K of the dehydrated and amorphous MOF,the subsequent formation of stable super-cooled liquid in the range of 558–586 K,the crystallization of the super-cooled liquid at T_c=597 K,and the final decomposition above T_d=695 K.Crystalline sample c-CoL1,glassy g-CoL1 obtained by quenching super-cooled liquid at different temperatures(563,573,583 K),and recrystallized rec-CoL1 at593 K,at 195 K were tested CO_2 for isothermal adsorption.Based on structure match in the CCDC database and the synthesis of iso-reticular Cu-MOF,coupled with the Rietveld fitting analysis of PXRD spectrum,the structure of the recrystallized phase was verified to be a dense,6-fold interpenetrated,and dia-net framework of[Co(L1)_2]_(6n).Glass prepared by quenching MOF super-cooled liquids at different temperatures retained gas-accessible porosity and showed temperature-dependent variations,revealing the inherent structure difference in phase-homogeneous MOF super-cooled liquids.Conclusions The highly flexible,porous,and 4-fold interpenetrated dia-net frameworks of[Co(L1)_2]_(4n) can be perturbated by water molecule coordination and thermal dehydration to achieve structural disorder and direct glass transition without the need of traditional melting.The obtained MOF super-cooled liquid further transforms to a dense and six-fold interpenetrated dia-net MOF,through the coordinative self-assembly during high-temperature crystallization process.Gas accessible porosity of the quenched MOF glass was verified by gas sorption.Based on the relevance between the quenching temperature of super-cooled liquid and the corresponding porosity of the MOF glasses,the internal liquid structure difference of the homogeneous MOF super-cooled liquid is revealed.This study presents a vivid example of the multiphase structure evolution of MOF,covering different steps of crystalline,perturbated,super-cooled liquid,glass,re-crystallized states.This work thus reveals the unique high-temperature coordinative self-recognition and well-ordered self-assembly of MOF super-cooled liquid.Such new era of high-temperature dynamic chemistry also offers great opportunity for material processing and function loading of MOF based on the super-cooled liquid,glass and re-crystallized states of MOF.

参考文献

[1] FURUKAWA H, CORDOVA K E, O’KEEFFE M, et al. The chemistry and applications of metal-organic frameworks[J]. Science, 2013,341(6149):1230444.

[2]陈小明,张杰鹏.金属–有机框架材料[M].北京:化学工业出版社, 2017.

[3] KITAGAWA S. Future porous materials[J]. Acc Chem Res, 2017,50(3):514–516.

[4] QIAN Q H, ASINGER P A, LEE M J, et al. MOF-based membranes for gas separations[J]. Chem Rev, 2020, 120(16):8161–8266.

[5]殷政,赵英博,曾明华.动态化学与材料和非晶物理新关联—金属有机框架玻璃的挑战,进展与新机遇[J].化学学报, 2023, 81:246–252.YIN Z, ZHAO Y B, ZENG M H. Acta Chim Sin, 2023, 81:246–252.

[6] YIN Z, ZHANG Y B, YU H B, et al. How to create MOF glasses and take advantage of emerging opportunities[J]. Sci Bull, 2020, 65(17):1432–1435.

[7] BENNETT T D, HORIKE S. Liquid, glass and amorphous solid states of coordination polymers and metal–organic frameworks[J]. Nat Rev Mater, 2018, 3:431–440.

[8] KENNEDY D, NORMAN C. What don’t we know?[J]. Science, 2005,309(5731):75.

[9]汪卫华.非晶态物质的本质和特性[J].物理学进展, 2013, 33(5):177–351.WANG Weihua. Prog Phys, 2013, 33(5):177–351.

[10] MA N, HORIKE S. Metal-organic network-forming glasses[J]. Chem Rev, 2022, 122(3):4163–4203.

[11] BENNETT T D, GOODWIN A L, DOVE M T, et al. Structure and properties of an amorphous metal-organic framework[J]. Phys Rev Lett,2010, 104(11):115503.

[12] BENNETT T D, TAN J C, YUE Y Z, et al. Hybrid glasses from strong and fragile metal-organic framework liquids[J]. Nat Commun, 2015, 6:8079.

[13] BENNETT T D, YUE Y Z, LI P, et al. Melt-quenched glasses of metal-organic frameworks[J]. J Am Chem Soc, 2016, 138(10):3484–3492.

[14] HORIKE S, UMEYAMA D, INUKAI M, et al. Coordination-networkbased ionic plastic crystal for anhydrous proton conductivity[J]. J Am Chem Soc, 2012, 134(18):7612–7615.

[15] UMEYAMA D, HORIKE S, INUKAI M, et al. Reversible solid-to-liquid phase transition of coordination polymer crystals[J]. J Am Chem Soc, 2015, 137(2):864–870.

[16] OGAWA T, TAKAHASHI K, KURIHARA T, et al. Network size control in coordination polymer glasses and its impact on viscosity and H+conductivity[J]. Chem Mater, 2022, 34(13):5832–5841.

[17] THORNE M F, GóMEZ M L R, BUMSTEAD A M, et al.Mechanochemical synthesis of mixed metal, mixed linker, glass-forming metal–organic frameworks[J]. Green Chem, 2020, 22(8):2505–2512.

[18] SHAW B K, HUGHES A R, DUCAMP M, et al. Melting of hybrid organic-inorganic perovskites[J]. Nat Chem, 2021, 13(8):778–785.

[19] ZHAO Y B, LEE S Y, BECKNELL N, et al. Nanoporous transparent MOF glasses with accessible internal surface[J]. J Am Chem Soc, 2016,138(34):10818–10821.

[20] NOZARI V, CALAHOO C, TUFFNELL J M, et al. Ionic liquid facilitated melting of the metal-organic framework ZIF-8[J]. Nat Commun, 2021, 12(1):5703.

[21] ZENG M H, FENG X L, CHEN X M. Crystal-to-crystal transformations of a microporous metal–organic laminated framework triggered by guest exchange, dehydration and readsorption[J]. Dalton Trans, 2004(15):2217–2223.

[22] ZENG M H, WANG Q X, TAN Y X, et al. Rigid Pillars and double walls in a porous metal-organic framework:Single-crystal to single-crystal, controlled uptake and release of iodine and electrical conductivity[J]. J Am Chem Soc, 2010, 132(8):2561–2563.

[23] YIN Z, WANG Q X, ZENG M H. Iodine release and recovery,influence of polyiodide anions on electrical conductivity and nonlinear optical activity in an interdigitated and interpenetrated bipillared-bilayer metal-organic framework[J]. J Am Chem Soc, 2012,134(10):4857–4863.

[24] ZENG M H, YIN Z, TAN Y X, et al. Nanoporous cobalt(II)MOF exhibiting four magnetic ground states and changes in gas sorption upon post-synthetic modification[J]. J Am Chem Soc, 2014, 136(12):4680–4688.

[25] YIN Z, WAN S, YANG J, et al. Recent advances in post-synthetic modification of metal–organic frameworks:New types and tandem reactions[J]. Coord Chem Rev, 2019, 378:500–512.

[26] YIN Z, ZHAO Y B, WAN S, et al. Synergistic stimulation of metal–organic frameworks for stable super-cooled liquid and quenched glass[J]. J Am Chem Soc, 2022, 144(29):13021–13025.

[27] CHEN M Z, LI J, LIAO S, et al. Multi-stage transformations of a cluster-based metal-organic framework:Perturbing crystals to glass-forming liquids that re-crystallize at high temperature[J]. Angew Chem Int Ed, 2023, 62(29):e202305942.

[28] ZENG M H, TAN Y X, HE Y P, et al. A porous 4-fold-interpenetrated chiral framework exhibiting vapochromism, single-crystal-to-singlecrystal solvent exchange, gas sorption, and a poisoning effect[J]. Inorg Chem, 2013, 52(5):2353–2360.

[29] LU T B, LUCK R L. Interlocking frameworks. A consequence of enlarging spacers from 4-pyridinecarboxylate to 4-(4-pyridyl)benzoate[J]. Inorg Chim Acta, 2003, 351:345–355.

基本信息:

DOI:10.14062/j.issn.0454-5648.20240145

中图分类号:TQ171.1

引用信息:

[1]刘涛,殷政,匡小军,等.串联扰动型金属有机框架玻璃的热诱导晶化及结构转变[J].硅酸盐学报,2024,52(08):2566-2574.DOI:10.14062/j.issn.0454-5648.20240145.

基金信息:

广西八桂英才项目(2019AC26001); 国家自然科学基金(U23A2080,22371173,22171075); 霍英东教育基金会高等院校青年教师基金(171110)

发布时间:

2024-08-15

出版时间:

2024-08-15

网络发布时间:

2024-05-21

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