Characteristics of functional materials for gas storage applications

As the world is desperately in need of sustainable solutions to handle the aftermath of utilizing non-sustainable fossil fuel power plants to meet the world’s energy demands, world researches are constantly finding sustainable methodologies to boost energy production of renewable power plants and re...

Full description

Bibliographic Details
Main Author: Ang, Melvin Shang Sheng
Other Authors: Anutosh Chakraborty
Format: Final Year Project (FYP)
Language:English
Published: Nanyang Technological University 2024
Subjects:
Online Access:https://hdl.handle.net/10356/177049
_version_ 1811678381498957824
author Ang, Melvin Shang Sheng
author2 Anutosh Chakraborty
author_facet Anutosh Chakraborty
Ang, Melvin Shang Sheng
author_sort Ang, Melvin Shang Sheng
collection NTU
description As the world is desperately in need of sustainable solutions to handle the aftermath of utilizing non-sustainable fossil fuel power plants to meet the world’s energy demands, world researches are constantly finding sustainable methodologies to boost energy production of renewable power plants and reduce carbon levels in the world’s atmosphere. For the past decade, researchers have heavily devoted their time to exploring the promising potential of functional porous adsorbents such as metal-organic frameworks (MOFs) and activated carbons. Given the extensive research on MOFs, it does not cover the full range of conditions such as conducting adsorption experiments at cryogenic temperature. Therefore, this project aims to explore the adsorption capability of HKUST-1, Maxsorb-III and other functionalization of HKUST-1 in various cryogenic temperatures. This project primarily focuses on the characteristics and the adsorption performance of Maxsorb-III, HKUST-1, and its functionalities for hydrogen and carbon dioxide gas storage applications. The parent MOFs, namely HKUST-1, and the modified HKUST-1: Maxsorb-III (1:0.5), HKUST-1: Maxsorb-III (1:1) and HKUST-1: Maxsorb-III (1:2) are synthesized using the solvothermal method. The surfaces of these functional porous adsorbents are analyzed using scanning electron microscopy (SEM), thermogravimetric analysis (TGA) and adsorption experiment to characterize the adsorbent crystal surfaces, thermal stability and adsorption capability respectively. The TGA data reveals that the decomposition temperature of HKUST-1 and its functionalities is estimated to range from 275°C to 325°C while Maxsorb-III has a higher decomposition temperature of over 400°C. Gas adsorption experiments are carried out on an experimental setup capable of measuring hydrogen and carbon dioxide adsorption uptake at various cryogenic temperatures and pressures not exceeding 6 bars. The data extracted from the adsorption experiment are calculated and presented as isotherms to understand the adsorbent adsorption performance for a given temperature and pressure. All experimental and calculated data are provided in this report.
first_indexed 2024-10-01T02:52:22Z
format Final Year Project (FYP)
id ntu-10356/177049
institution Nanyang Technological University
language English
last_indexed 2024-10-01T02:52:22Z
publishDate 2024
publisher Nanyang Technological University
record_format dspace
spelling ntu-10356/1770492024-05-25T16:50:09Z Characteristics of functional materials for gas storage applications Ang, Melvin Shang Sheng Anutosh Chakraborty School of Mechanical and Aerospace Engineering AChakraborty@ntu.edu.sg Engineering As the world is desperately in need of sustainable solutions to handle the aftermath of utilizing non-sustainable fossil fuel power plants to meet the world’s energy demands, world researches are constantly finding sustainable methodologies to boost energy production of renewable power plants and reduce carbon levels in the world’s atmosphere. For the past decade, researchers have heavily devoted their time to exploring the promising potential of functional porous adsorbents such as metal-organic frameworks (MOFs) and activated carbons. Given the extensive research on MOFs, it does not cover the full range of conditions such as conducting adsorption experiments at cryogenic temperature. Therefore, this project aims to explore the adsorption capability of HKUST-1, Maxsorb-III and other functionalization of HKUST-1 in various cryogenic temperatures. This project primarily focuses on the characteristics and the adsorption performance of Maxsorb-III, HKUST-1, and its functionalities for hydrogen and carbon dioxide gas storage applications. The parent MOFs, namely HKUST-1, and the modified HKUST-1: Maxsorb-III (1:0.5), HKUST-1: Maxsorb-III (1:1) and HKUST-1: Maxsorb-III (1:2) are synthesized using the solvothermal method. The surfaces of these functional porous adsorbents are analyzed using scanning electron microscopy (SEM), thermogravimetric analysis (TGA) and adsorption experiment to characterize the adsorbent crystal surfaces, thermal stability and adsorption capability respectively. The TGA data reveals that the decomposition temperature of HKUST-1 and its functionalities is estimated to range from 275°C to 325°C while Maxsorb-III has a higher decomposition temperature of over 400°C. Gas adsorption experiments are carried out on an experimental setup capable of measuring hydrogen and carbon dioxide adsorption uptake at various cryogenic temperatures and pressures not exceeding 6 bars. The data extracted from the adsorption experiment are calculated and presented as isotherms to understand the adsorbent adsorption performance for a given temperature and pressure. All experimental and calculated data are provided in this report. Bachelor's degree 2024-05-21T06:01:00Z 2024-05-21T06:01:00Z 2024 Final Year Project (FYP) Ang, M. S. S. (2024). Characteristics of functional materials for gas storage applications. Final Year Project (FYP), Nanyang Technological University, Singapore. https://hdl.handle.net/10356/177049 https://hdl.handle.net/10356/177049 en application/pdf Nanyang Technological University
spellingShingle Engineering
Ang, Melvin Shang Sheng
Characteristics of functional materials for gas storage applications
title Characteristics of functional materials for gas storage applications
title_full Characteristics of functional materials for gas storage applications
title_fullStr Characteristics of functional materials for gas storage applications
title_full_unstemmed Characteristics of functional materials for gas storage applications
title_short Characteristics of functional materials for gas storage applications
title_sort characteristics of functional materials for gas storage applications
topic Engineering
url https://hdl.handle.net/10356/177049
work_keys_str_mv AT angmelvinshangsheng characteristicsoffunctionalmaterialsforgasstorageapplications