Literature DB >> 25019223

Proton dynamics of two-dimensional oxalate-bridged coordination polymers.

Satoshi Miyatsu1, Maiko Kofu, Atsushi Nagoe, Takeshi Yamada, Masaaki Sadakiyo, Teppei Yamada, Hiroshi Kitagawa, Madhusudan Tyagi, Victoria García Sakai, Osamu Yamamuro.   

Abstract

A two-dimensional porous coordination polymer (NH4)2{HOOC(CH2)4COOH}[Zn2(C2O4)3] (abbreviated as (NH4)2(adp)[Zn2(ox)3] (adp = adipic acid, ox = oxalate)), which accommodates water molecules between the [Zn2(ox)3] layers, is highly remarked as a new type of crystalline proton conductor. In order to investigate its phase behavior and the proton conducting mechanism, we have performed adiabatic calorimetry, neutron diffraction, and quasi-elastic neutron scattering experiments on a fully hydrated sample (NH4)2(adp)[Zn2(ox)3]·3H2O with the highest proton conductivity (8 × 10(-3) S cm(-1), 25 °C, 98% RH). Its isostructural derivative K2(adp)[Zn2(ox)3]·3H2O was also measured to investigate the role of ammonium ions. (NH4)2(adp)[Zn2(ox)3]·3H2O and K2(adp)[Zn2(ox)3]·3H2O exhibit higher order transitions at 86 K and 138 K, respectively. From the magnitude of the transition entropy, the former is of an order-disorder type while the latter is of a displacive type. (NH4)2(adp)[Zn2(ox)3]·3H2O has four Debye-type relaxations and K2(adp)[Zn2(ox)3]·3H2O has two similar relaxations above each transition temperature. The two relaxations of (NH4)2(adp)[Zn2(ox)3]·3H2O with very small activation energies (ΔEa < 5 kJ mol(-1)) are due to the rotational motions of ammonium ions and play important roles in the proton conduction mechanism. It was also found that the protons in (NH4)2(adp)[Zn2(ox)3]·3H2O are carried through a Grotthuss mechanism. We present a discussion on the proton conducting mechanism based on the present structural and dynamical information.

Entities:  

Year:  2014        PMID: 25019223     DOI: 10.1039/c4cp01432d

Source DB:  PubMed          Journal:  Phys Chem Chem Phys        ISSN: 1463-9076            Impact factor:   3.676


  4 in total

1.  Minerals with metal-organic framework structures.

Authors:  Igor Huskić; Igor V Pekov; Sergey V Krivovichev; Tomislav Friščić
Journal:  Sci Adv       Date:  2016-08-05       Impact factor: 14.136

2.  Highly Efficient Proton Conduction in the Metal-Organic Framework Material MFM-300(Cr)·SO4(H3O)2.

Authors:  Jin Chen; Qingqing Mei; Yinlin Chen; Christopher Marsh; Bing An; Xue Han; Ian P Silverwood; Ming Li; Yongqiang Cheng; Meng He; Xi Chen; Weiyao Li; Meredydd Kippax-Jones; Danielle Crawshaw; Mark D Frogley; Sarah J Day; Victoria García-Sakai; Pascal Manuel; Anibal J Ramirez-Cuesta; Sihai Yang; Martin Schröder
Journal:  J Am Chem Soc       Date:  2022-07-01       Impact factor: 16.383

3.  Proton Conduction in a Phosphonate-Based Metal-Organic Framework Mediated by Intrinsic "Free Diffusion inside a Sphere".

Authors:  Simona Pili; Stephen P Argent; Christopher G Morris; Peter Rought; Victoria García-Sakai; Ian P Silverwood; Timothy L Easun; Ming Li; Mark R Warren; Claire A Murray; Chiu C Tang; Sihai Yang; Martin Schröder
Journal:  J Am Chem Soc       Date:  2016-05-16       Impact factor: 15.419

4.  Three-dimensional protonic conductivity in porous organic cage solids.

Authors:  Ming Liu; Linjiang Chen; Scott Lewis; Samantha Y Chong; Marc A Little; Tom Hasell; Iain M Aldous; Craig M Brown; Martin W Smith; Carole A Morrison; Laurence J Hardwick; Andrew I Cooper
Journal:  Nat Commun       Date:  2016-09-13       Impact factor: 14.919

  4 in total

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