Microstructures and spectroscopic properties of cryptomelane-type manganese dioxide nanofibers

被引:433
作者
Gao, Tao [1 ,2 ]
Glerup, Marianne [1 ,2 ]
Krumeich, Frank [3 ]
Nesper, Reinhard [3 ]
Fjellvag, Helmer [1 ,2 ]
Norby, Poul [1 ,2 ]
机构
[1] Univ Oslo, Dept Chem, N-0315 Oslo, Norway
[2] Univ Oslo, Ctr Mat Sci & Nanotechnol, N-0315 Oslo, Norway
[3] ETH, Inorgan Chem Lab, CH-8093 Zurich, Switzerland
关键词
D O I
10.1021/jp804924f
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Cryptomelane-type manganese dioxide (K-MnO(2)) nanofibers with typical diameters of 20-60 nm and lengths of 1-6 mu m were prepared by reacting KMnO(4) with MnSO(4) under hydrothermal conditions. Rietveld refinement from synchrotron X-ray powder diffraction data showed that the K-MnO(2) nanofibers crystallize in a bodycentered tetragonal structure (space group 14/m) with unit cell parameters a = 9.8241(5) angstrom and c = 2.8523(1) and elongate along the < 001 > direction. The K-MnO(2) nanofibers had a mean chemical composition of K(0.11)(H(3)O)(0.05)MnO(2). The optical band gap of the K-MnO(2) nanofibers was estimated to be 1.32 eV based on the UV-visible absorption. The K-MnO(2) nanofibers had four diagnostic infrared absorptions at 722, 593, 524, and 466 cm(-1), which represents specific fingerprints of the vibrational features of MnO(2) materials containing (2 x 2) + (1 x 1) tunnel structures. The Raman scattering spectrum of the K-MnO(2) nanofibers had nine Raman bands with four main contributions at 183, 386, 574, and 634 cm(-1) along with five weak ones at 286, 330, 470, 512, and 753 cm(-1), which are attributed to the Mn-O lattice vibrations within the MnO(6) octahedral frameworks. These intrinsic vibrational features can be conveniently used for online and/or in situ analyses of the K-MnO(2) nanofibers during electrochemical and/or ion-exchange reactions.
引用
收藏
页码:13134 / 13140
页数:7
相关论文
共 53 条
[21]   Synthesis of single crystal manganese oxide octahedral molecular sieve (OMS) nanostructures with tunable tunnels and shapes [J].
Li, WN ;
Yuan, JK ;
Gomez-Mower, S ;
Sithambaram, S ;
Suib, SL .
JOURNAL OF PHYSICAL CHEMISTRY B, 2006, 110 (07) :3066-3070
[22]   Synthesis and characterization of manganese dioxide spontaneously coated on carbon nanotubes [J].
Ma, Sang-Bok ;
Ahn, Kyun-Young ;
Lee, Eun-Sung ;
Oh, Ki-Hwan ;
Kim, Kwang-Bum .
CARBON, 2007, 45 (02) :375-382
[23]  
PEREIRA CL, 1985, J PHYS CHEM-US, V89, P5772
[24]   Higher valency ion substitution into the manganese oxide framework [J].
Polverejan, M ;
Viliegas, JC ;
Suib, SL .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2004, 126 (25) :7774-7775
[25]   Morphology control of cryptomelane type MnO2 nanowires by soft chemistry. growth mechanisms in aqueous medium [J].
Portehault, David ;
Cassaignon, Sophie ;
Baudrin, Emmanuel ;
Jolivet, Jean-Pierre .
CHEMISTRY OF MATERIALS, 2007, 19 (22) :5410-5417
[26]   Manganese oxide minerals: Crystal structures and economic and environmental significance [J].
Post, JE .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1999, 96 (07) :3447-3454
[27]  
POTTER RM, 1979, AM MINERAL, V64, P1199
[28]   Colossal magnetoresistance [J].
Ramirez, AP .
JOURNAL OF PHYSICS-CONDENSED MATTER, 1997, 9 (39) :8171-8199
[29]   Photocurrent generation from semiconducting manganese oxide nanosheets in response to visible light [J].
Sakai, N ;
Ebina, Y ;
Takada, K ;
Sasaki, T .
JOURNAL OF PHYSICAL CHEMISTRY B, 2005, 109 (19) :9651-9655
[30]   Charge localization and successive magnetic phase transitions of mixed-valence manganese oxides K1.5(H3O)xMn8O16 (0&lt;x&lt;0.5) [J].
Sato, H ;
Enoki, T ;
Yamaura, JI ;
Yamamoto, N .
PHYSICAL REVIEW B, 1999, 59 (20) :12836-12841