TY - JOUR
T1 - Li13Mn(SeO3)8
T2 - Lithium-Rich Transition Metal Selenite Containing Jahn-Teller Distortive Cations
AU - Jo, Hongil
AU - Song, Seung Yoon
AU - Cho, Eunjeong
AU - So, Jongho
AU - Lee, Suheon
AU - Choi, Kwang Yong
AU - Ok, Kang Min
N1 - Publisher Copyright:
© 2017 American Chemical Society.
PY - 2017/8/7
Y1 - 2017/8/7
N2 - A novel lithium-rich transition metal selenite, Li13Mn(SeO3)8, that is composed of a Jahn-Teller distortive cation, Mn3+, in the high spin d4 state, and a second-order Jahn-Teller (SOJT) distortive lone pair cation, Se4+, has been synthesized via hydrothermal and high temperature solid state reactions. The selenite is classified as a molecular compound consisting of MnO6 octahedra, SeO3 trigonal pyramids, and Li+ cations. Considering the Li-O interactions, the structure of Li13Mn(SeO3)8 may be described as a pseudo-three-dimensional framework as well. The title compound is thermally stable up to 500 °C and starts decomposing above the temperature attributable to the volatilization of SeO2. While the MnO6 octahedra in Li13Mn(SeO3)8 exhibit six identical Mn-O bond distances at room temperature due to the dynamic Jahn-Teller effect, a clear elongation of two Mn-O bonds along a specific direction is observed at 100 K. A series of isostructural selenites with different transition metals, i.e., Li13M(SeO3)8 (M = Sc, Cr, and Fe), have been also successfully obtained in phase pure forms using similar synthetic methods. Magnetic properties, spectroscopic characterizations, and local dipole moments calculations for all the synthesized selenites are presented.
AB - A novel lithium-rich transition metal selenite, Li13Mn(SeO3)8, that is composed of a Jahn-Teller distortive cation, Mn3+, in the high spin d4 state, and a second-order Jahn-Teller (SOJT) distortive lone pair cation, Se4+, has been synthesized via hydrothermal and high temperature solid state reactions. The selenite is classified as a molecular compound consisting of MnO6 octahedra, SeO3 trigonal pyramids, and Li+ cations. Considering the Li-O interactions, the structure of Li13Mn(SeO3)8 may be described as a pseudo-three-dimensional framework as well. The title compound is thermally stable up to 500 °C and starts decomposing above the temperature attributable to the volatilization of SeO2. While the MnO6 octahedra in Li13Mn(SeO3)8 exhibit six identical Mn-O bond distances at room temperature due to the dynamic Jahn-Teller effect, a clear elongation of two Mn-O bonds along a specific direction is observed at 100 K. A series of isostructural selenites with different transition metals, i.e., Li13M(SeO3)8 (M = Sc, Cr, and Fe), have been also successfully obtained in phase pure forms using similar synthetic methods. Magnetic properties, spectroscopic characterizations, and local dipole moments calculations for all the synthesized selenites are presented.
UR - https://www.scopus.com/pages/publications/85027018284
U2 - 10.1021/acs.inorgchem.7b01552
DO - 10.1021/acs.inorgchem.7b01552
M3 - Article
C2 - 28741956
AN - SCOPUS:85027018284
SN - 0020-1669
VL - 56
SP - 9369
EP - 9375
JO - Inorganic Chemistry
JF - Inorganic Chemistry
IS - 15
ER -