ANALYSIS OF PROTON TRANSPORT PROPERTIES OF PSF-SPSF-TEOS BLEND MEMBRANE THROUGH POTENTIAL MEMBRANE MEASUREMENTS

One of the alternative energy sources being widely developed is Polymer Electrolyte Membrane Fuel Cell (PEMFC). PEMFC is a fuel cell that uses charged polymer membrane that transports proton from anode to cathode. To produce energy, PEMFC needs oxygen from air and hydrogen as fuel to perform redox r...

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Main Author: APRILIA (NIM : 10508040); Pembimbing : Dr. Veinardi Suendo, NUNGKY
Format: Final Project
Language:Indonesia
Online Access:https://digilib.itb.ac.id/gdl/view/16733
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Institution: Institut Teknologi Bandung
Language: Indonesia
id id-itb.:16733
spelling id-itb.:167332017-09-27T11:42:31ZANALYSIS OF PROTON TRANSPORT PROPERTIES OF PSF-SPSF-TEOS BLEND MEMBRANE THROUGH POTENTIAL MEMBRANE MEASUREMENTS APRILIA (NIM : 10508040); Pembimbing : Dr. Veinardi Suendo, NUNGKY Indonesia Final Project INSTITUT TEKNOLOGI BANDUNG https://digilib.itb.ac.id/gdl/view/16733 One of the alternative energy sources being widely developed is Polymer Electrolyte Membrane Fuel Cell (PEMFC). PEMFC is a fuel cell that uses charged polymer membrane that transports proton from anode to cathode. To produce energy, PEMFC needs oxygen from air and hydrogen as fuel to perform redox reaction and produce water. In this research, proton conducting membrane was synthesized by blending polysulfone (PSF), sulfonated polysulfone (SPSF) and tetraethoxysilane (TEOS). This membrane is expected to replace the commercial proton conducting membrane, Nafion, which is expensive and its waste is not enviromentally friendly. Here, SPSF was varied from 10 to 50 weight percent, while the total weight is kept constant. The presence of sulfonate and silanol groups in the polymer membrane is expected to increase its ability in transporting proton. Polysulfone is sulfonated with chlorosulfonic acid in chloroform where TEOS is polymerized using methanesulfonic acid as catalyst. The results of membrane potential indicate that the increase of SPSF content also increases the effective charged which means that the ability to transport proton is increased. This result is supported by proton conductivity test that also tend to increase. Supporting characterizations were also conducted such as membrane structure and morphology using Scanning Electron Microscope (SEM), Infrared (IR) spectrophotometry, and Raman spectroscopy, where the physical-chemical properties of the membrane was observed using water uptake, contact angle and ion-exchange capacity measurements. text
institution Institut Teknologi Bandung
building Institut Teknologi Bandung Library
continent Asia
country Indonesia
Indonesia
content_provider Institut Teknologi Bandung
collection Digital ITB
language Indonesia
description One of the alternative energy sources being widely developed is Polymer Electrolyte Membrane Fuel Cell (PEMFC). PEMFC is a fuel cell that uses charged polymer membrane that transports proton from anode to cathode. To produce energy, PEMFC needs oxygen from air and hydrogen as fuel to perform redox reaction and produce water. In this research, proton conducting membrane was synthesized by blending polysulfone (PSF), sulfonated polysulfone (SPSF) and tetraethoxysilane (TEOS). This membrane is expected to replace the commercial proton conducting membrane, Nafion, which is expensive and its waste is not enviromentally friendly. Here, SPSF was varied from 10 to 50 weight percent, while the total weight is kept constant. The presence of sulfonate and silanol groups in the polymer membrane is expected to increase its ability in transporting proton. Polysulfone is sulfonated with chlorosulfonic acid in chloroform where TEOS is polymerized using methanesulfonic acid as catalyst. The results of membrane potential indicate that the increase of SPSF content also increases the effective charged which means that the ability to transport proton is increased. This result is supported by proton conductivity test that also tend to increase. Supporting characterizations were also conducted such as membrane structure and morphology using Scanning Electron Microscope (SEM), Infrared (IR) spectrophotometry, and Raman spectroscopy, where the physical-chemical properties of the membrane was observed using water uptake, contact angle and ion-exchange capacity measurements.
format Final Project
author APRILIA (NIM : 10508040); Pembimbing : Dr. Veinardi Suendo, NUNGKY
spellingShingle APRILIA (NIM : 10508040); Pembimbing : Dr. Veinardi Suendo, NUNGKY
ANALYSIS OF PROTON TRANSPORT PROPERTIES OF PSF-SPSF-TEOS BLEND MEMBRANE THROUGH POTENTIAL MEMBRANE MEASUREMENTS
author_facet APRILIA (NIM : 10508040); Pembimbing : Dr. Veinardi Suendo, NUNGKY
author_sort APRILIA (NIM : 10508040); Pembimbing : Dr. Veinardi Suendo, NUNGKY
title ANALYSIS OF PROTON TRANSPORT PROPERTIES OF PSF-SPSF-TEOS BLEND MEMBRANE THROUGH POTENTIAL MEMBRANE MEASUREMENTS
title_short ANALYSIS OF PROTON TRANSPORT PROPERTIES OF PSF-SPSF-TEOS BLEND MEMBRANE THROUGH POTENTIAL MEMBRANE MEASUREMENTS
title_full ANALYSIS OF PROTON TRANSPORT PROPERTIES OF PSF-SPSF-TEOS BLEND MEMBRANE THROUGH POTENTIAL MEMBRANE MEASUREMENTS
title_fullStr ANALYSIS OF PROTON TRANSPORT PROPERTIES OF PSF-SPSF-TEOS BLEND MEMBRANE THROUGH POTENTIAL MEMBRANE MEASUREMENTS
title_full_unstemmed ANALYSIS OF PROTON TRANSPORT PROPERTIES OF PSF-SPSF-TEOS BLEND MEMBRANE THROUGH POTENTIAL MEMBRANE MEASUREMENTS
title_sort analysis of proton transport properties of psf-spsf-teos blend membrane through potential membrane measurements
url https://digilib.itb.ac.id/gdl/view/16733
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