2D materials for lithium ion batteries

Nanosizing and nanostructuring from bulk crystal has led to interesting properties that appeal in Lithium energy storage research. The properties include having a larger surface area for energy storage and shorter diffusion length for fast electron transport. The project will be focusing on the inve...

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Main Author: Muhd Iszaki Patdillah
Other Authors: Alex Yan Qingyu
Format: Final Year Project
Language:English
Published: Nanyang Technological University 2018
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Online Access:http://hdl.handle.net/10356/74600
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Institution: Nanyang Technological University
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spelling sg-ntu-dr.10356-746002023-03-04T15:34:24Z 2D materials for lithium ion batteries Muhd Iszaki Patdillah Alex Yan Qingyu School of Materials Science and Engineering AlexYan@ntu.edu.sg DRNTU::Engineering::Materials::Nanostructured materials Nanosizing and nanostructuring from bulk crystal has led to interesting properties that appeal in Lithium energy storage research. The properties include having a larger surface area for energy storage and shorter diffusion length for fast electron transport. The project will be focusing on the investigation of a class of materials that is known as Metal thiophosphate. Bulk crystals of MnPS3 was exfoliated into high yield of nanosheets which served as an anode for the Lithium energy storage. It was then further characterized to obtain its structure morphology and thickness. The report also includes information on the mechanism of the different stages of Lithium energy storage. Also, the comparison of nanomaterials with respect to the desired properties as well as materials that had already been commercialized. The changes in morphology observed using the characterization technique from bulk MnPS3 to 2D nanosheets through exfoliation helped improve the performance of the material in Lithium energy storage. This includes having a higher storage surface area, having a uniform crystalline region and higher rate of ions exchange transport due to the reduction in thickness with shorter diffusion length. The changes in thickness does not affect the microstructure of the compound as the material remain to be stable and there are no drastic changes to the elements in the compound. This can be seen in XRD analysis where the prominent peaks are still present and the consistency of the element distribution can be seen using the EDX elemental analysis. From the electrochemical measurement, there is an increase in the capacity i.e from 180 mAh g-1 of bulk MnPS3 (BMPS) to 500 mAh g-1 of the EMPS. Using the Cyclic voltammetry and galvanotactic charging and discharging test, it is observed that the capacity profile remains stable. In the subsequent cycles, it indicates that the reaction has a reversibility process. Even after 200th cycle as can be seen in figure 12(d), the charge and discharge capacity stay close to the initial capacity which is about 500mA h g-1 for EMPS. Hence the properties are desirable in the application of LIB. Bachelor of Engineering (Materials Engineering) 2018-05-22T04:42:11Z 2018-05-22T04:42:11Z 2018 Final Year Project (FYP) http://hdl.handle.net/10356/74600 en Nanyang Technological University 39 p. application/pdf Nanyang Technological University
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering::Materials::Nanostructured materials
spellingShingle DRNTU::Engineering::Materials::Nanostructured materials
Muhd Iszaki Patdillah
2D materials for lithium ion batteries
description Nanosizing and nanostructuring from bulk crystal has led to interesting properties that appeal in Lithium energy storage research. The properties include having a larger surface area for energy storage and shorter diffusion length for fast electron transport. The project will be focusing on the investigation of a class of materials that is known as Metal thiophosphate. Bulk crystals of MnPS3 was exfoliated into high yield of nanosheets which served as an anode for the Lithium energy storage. It was then further characterized to obtain its structure morphology and thickness. The report also includes information on the mechanism of the different stages of Lithium energy storage. Also, the comparison of nanomaterials with respect to the desired properties as well as materials that had already been commercialized. The changes in morphology observed using the characterization technique from bulk MnPS3 to 2D nanosheets through exfoliation helped improve the performance of the material in Lithium energy storage. This includes having a higher storage surface area, having a uniform crystalline region and higher rate of ions exchange transport due to the reduction in thickness with shorter diffusion length. The changes in thickness does not affect the microstructure of the compound as the material remain to be stable and there are no drastic changes to the elements in the compound. This can be seen in XRD analysis where the prominent peaks are still present and the consistency of the element distribution can be seen using the EDX elemental analysis. From the electrochemical measurement, there is an increase in the capacity i.e from 180 mAh g-1 of bulk MnPS3 (BMPS) to 500 mAh g-1 of the EMPS. Using the Cyclic voltammetry and galvanotactic charging and discharging test, it is observed that the capacity profile remains stable. In the subsequent cycles, it indicates that the reaction has a reversibility process. Even after 200th cycle as can be seen in figure 12(d), the charge and discharge capacity stay close to the initial capacity which is about 500mA h g-1 for EMPS. Hence the properties are desirable in the application of LIB.
author2 Alex Yan Qingyu
author_facet Alex Yan Qingyu
Muhd Iszaki Patdillah
format Final Year Project
author Muhd Iszaki Patdillah
author_sort Muhd Iszaki Patdillah
title 2D materials for lithium ion batteries
title_short 2D materials for lithium ion batteries
title_full 2D materials for lithium ion batteries
title_fullStr 2D materials for lithium ion batteries
title_full_unstemmed 2D materials for lithium ion batteries
title_sort 2d materials for lithium ion batteries
publisher Nanyang Technological University
publishDate 2018
url http://hdl.handle.net/10356/74600
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