Preparation of CaTiO<sub>3</sub> Asymmetric Membranes Using Polyetherimide as Binder Polymer
Author(s) -
Endang Purwanti Setyaningsih,
Maya Machfudzoh,
Wahyu Prasetyo Utomo,
Hamzah Fansuri
Publication year - 2017
Publication title -
indonesian journal of chemistry
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.273
H-Index - 14
eISSN - 2460-1578
pISSN - 1411-9420
DOI - 10.22146/ijc.21172
Subject(s) - polyetherimide , membrane , scanning electron microscope , sintering , phase inversion , polymer , materials science , composite material , porosity , vickers hardness test , layer (electronics) , chemical engineering , chemistry , microstructure , biochemistry , engineering
Asymmetric dense and thin membranes have been prepared from powders of perovskite oxide-type CaTiO 3 without cracking by phase inversion method. Polyetherimide was used as a polymeric binder in the method. The resulting green membranes, composed of CaTiO 3 powder and polyetherimide binder, were sintered at 890, 1100 or 1200 °C. The crystal phase of CaTiO 3 was analyzed using X-Ray Diffraction (XRD). The XRD pattern of the synthesized CaTiO 3 powder was matched with the reference indicating the formation of CaTiO 3 structure. Sintering at 890 °C fails to form a strong membrane. Scanning Electron Microscope (SEM) images of the membranes showed that the membrane had the asymmetric structure with dense layer on one side and porous layer on the other side. The pores in the porous layer were both finger-like and sponge-like structure. The mechanical strength of the membranes, which were determined by Vickers micro hardness method, varied from 3.5 to 25.8 Hv. The strongest membrane without any crack was resulted from sintering at 1200°C with hardness values between 19.4 and 25.8 Hv. Thermal expansion coefficients of the asymmetric membranes sintered at 1100 and 1200 °C, measured with Thermomechanical Analyzer (TMA), were 10.82 × 10 -6 and 12.78 × 10 -6 .C -1 respectively.
Accelerating Research
Robert Robinson Avenue,
Oxford Science Park, Oxford
OX4 4GP, United Kingdom
Address
John Eccles HouseRobert Robinson Avenue,
Oxford Science Park, Oxford
OX4 4GP, United Kingdom