TY - JOUR
T1 - Two different types of channels exhibiting distinct proton transport behavior in an open-framework aluminophosphate
AU - Xue, Chen
AU - Zou, Yang
AU - Liu, Shao Xian
AU - Ren, Xiao Ming
AU - Tian, Zheng Fang
N1 - Publisher Copyright:
© 2017 Elsevier Inc.
PY - 2018/2
Y1 - 2018/2
N2 - A three-dimensional open-framework aluminophosphate, (NH4)2Al4(PO4)4(HPO4)·H2O (1), shows two types of eight-membered polyhedral ring channels. The lattice water molecules occupy within the channel with (HO)PO3 tetrahedra (channel-I), whilst the ammonium ions reside in another type of channel (channel-II). This aluminophosphate shows superior stability to water and NaOH aqueous solution, but unstable to H2SO4 aqueous solution. The proton conductance of 1 has been investigated under anhydrous condition and various relative humidity, indicating rather low conductivity under anhydrous condition even at elevated temperature (σdc = 9.05 × 10−13 S cm−1 at 343 K and 4.25 × 10−10 S cm−1 even at 473 K), and this situation demonstrates that both the ammonium ions and the protons in (HO)PO3 tetrahedra have quite low mobility. The conductivity of 1 reaches to 4.0 × 10−5 S cm−1 at 299 K, 2.57 × 10−4 S cm−1 at 343 K under 99%RH, respectively. The greatly enhancement of proton conductivity at 99%RH is due to the formation of H-bond between H2O molecules and (HO)PO3 tetrahedra in the channel-I to assist proton hopping process, while the ammonium ions show negligible contribution to enhancement of proton conductivity.
AB - A three-dimensional open-framework aluminophosphate, (NH4)2Al4(PO4)4(HPO4)·H2O (1), shows two types of eight-membered polyhedral ring channels. The lattice water molecules occupy within the channel with (HO)PO3 tetrahedra (channel-I), whilst the ammonium ions reside in another type of channel (channel-II). This aluminophosphate shows superior stability to water and NaOH aqueous solution, but unstable to H2SO4 aqueous solution. The proton conductance of 1 has been investigated under anhydrous condition and various relative humidity, indicating rather low conductivity under anhydrous condition even at elevated temperature (σdc = 9.05 × 10−13 S cm−1 at 343 K and 4.25 × 10−10 S cm−1 even at 473 K), and this situation demonstrates that both the ammonium ions and the protons in (HO)PO3 tetrahedra have quite low mobility. The conductivity of 1 reaches to 4.0 × 10−5 S cm−1 at 299 K, 2.57 × 10−4 S cm−1 at 343 K under 99%RH, respectively. The greatly enhancement of proton conductivity at 99%RH is due to the formation of H-bond between H2O molecules and (HO)PO3 tetrahedra in the channel-I to assist proton hopping process, while the ammonium ions show negligible contribution to enhancement of proton conductivity.
KW - Open-framework aluminophosphate
KW - Proton conductance
KW - Remarkable alkaline stability
UR - http://www.scopus.com/inward/record.url?scp=85037529704&partnerID=8YFLogxK
U2 - 10.1016/j.jssc.2017.11.041
DO - 10.1016/j.jssc.2017.11.041
M3 - 文章
AN - SCOPUS:85037529704
SN - 0022-4596
VL - 258
SP - 695
EP - 701
JO - Journal of Solid State Chemistry
JF - Journal of Solid State Chemistry
ER -