Investigation of Structural and Thermal Evolution in Novel Layered Perovskite NdSrMn2O5+δ via Neutron Powder Diffraction and Thermogravimetric Analysis

Author:

Afroze Shammya12,Yilmaz Duygu2,Reza Md Sumon1,Henry Paul F.34,Cheok Quentin1,Zaini Juliana H1,Azad Abul K.1ORCID,Issakhov Alibek5,Sadeghzadeh Milad6ORCID

Affiliation:

1. Faculty of Integrated Technologies, Universiti Brunei Darussalam, Jalan Tungku Link, Gadong, BE 1410, Bandar Seri Begawan, Brunei Darussalam

2. Department of Chemistry and Chemical Engineering, Chalmers University of Technology, SE 412 96, Gothenburg, Sweden

3. ISIS Pulsed Neutron & Muon Facility, Rutherford Appleton Laboratory, Harwell Campus, OX11 0QX, Didcot, UK

4. Department of Chemistry–Ångström Laboratory Inorganic Chemistry, Uppsala University, 751 21 Uppsala, Sweden

5. Faculty of Mechanics and Mathematics, Department of Mathematical and Computer Modelling, Al-Farabi Kazakh National University, Almaty, Kazakhstan

6. Department of Renewable Energy and Environmental Engineering, University of Tehran, Tehran, Iran

Abstract

Neutron diffraction is one of the best methods for structural analysis of a complex, layered perovskite material with low symmetry by accurately detecting the oxygen positions through octahedral tilting. In this research, the crystal structure of NdSrMn2O5+δ was identified through X-ray diffraction (XRD) and neutron powder diffraction (NPD) at room temperature (RT), which indicated the formation of a layered structure in orthorhombic symmetry in the Pmmm (no. 47) space group. Rietveld refinement of the neutron diffraction data has confirmed the orthorhombic symmetry with unit cell parameters (a = 3.8367 (1) Å, b = 3.8643 (2) Å, and c = 7.7126 (1) Å), atomic positions, and oxygen occupancy. Thermogravimetric analysis revealed the total weight loss of about 0.10% for 20–950°C temperature, which occurred mainly to create oxygen vacancies at high temperatures. Rietveld analyses concurred with the XRD and neutron data allowing correlation of occupancy factors of the oxygen sites.

Funder

ISIS Neutron and Muon Facility

Publisher

Hindawi Limited

Subject

General Chemical Engineering

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