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研究生: 謝孟錡
HSIEH, Meng-Chi
論文名稱: 以多尺度計算化學方法理解孔洞材料:以基於MOF-253的催化劑為例
Multi-scale computational chemistry approach for understanding the porous materials: The MOF-253-based catalyst example
指導教授: 蔡明剛
Tsai, Ming-Kang
口試委員: 蔡明剛
Tsai, Ming-Kang
王迪彥
Wang, Di-Yan
林嘉和
Lin, Chia-Her
葉丞豪
Yeh, Chen-Hao
張鈞智
Chang, Chun-Chih
口試日期: 2024/07/23
學位類別: 博士
Doctor
系所名稱: 化學系
Department of Chemistry
論文出版年: 2024
畢業學年度: 112
語文別: 中文
論文頁數: 210
中文關鍵詞: 計算化學金屬有機骨架材料多尺度催化二氧化碳還原反應
英文關鍵詞: Computational chemistry, Metal-organic frameworks, Multiscale, Catalysis, CO2 reduction reaction
研究方法: 實驗設計法
DOI URL: http://doi.org/10.6345/NTNU202401146
論文種類: 學術論文
相關次數: 點閱:137下載:0
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  • 由於大氣中二氧化碳濃度提升,造成全球性的環境變遷,並影響生物生存,目前科學界對於解決此問題具有急迫性。金屬有機骨架作為孔洞性材料,具有好的儲存氣體的能力。 MOF-253 經證實對於二氧化碳有很好的吸附能力。本論文旨在通過應用多尺度模擬來加速設計、篩選後修飾合成後的 MOF-253,作為催化中心。目的有四:設計空間尺度由下到上的篩選策略、設計時間尺度由上到下的篩選策略、設計適用於金屬有機骨架材料的模型、推測在此類材料上的反應路徑。
    第一章詳細敘述本研究的研究背景、動機與架構。第二章說明實驗方法以及用於模擬實驗的理論。第三章說明空間尺度由下到上的篩選模式的實驗設計與研究結果。第四章說明時間尺度由上到下的篩選模式的實驗設計與研究結果。第五章總結本研究的成果並說明未來的展望。
    透過本研究,提出了三個可行的單金屬反應中心作為活化的催化劑,並且提出了另一種可能的金屬雙體反應中心形式可以做為催化中心。同時,也說明了對應這些催化中心的反應機制。此外,也提出了在金屬有機骨架材料中,連接體旋轉的影響因素與帶來的影響。期許本研究能對於孔洞材料的相關研究發展有所助益。

    Due to the increasing concentration of carbon dioxide in the atmosphere, global environmental changes have been induced, affecting the survival of organisms. The scientific community currently faces an urgent need to address this issue. Metal-organic frameworks (MOFs) are porous materials with excellent gas storage capabilities. MOF-253 has been proven to have a strong adsorption capacity for carbon dioxide. This dissertation aims to accelerate the design, and screening of post-synthetic modification of MOF-253 as a catalytic center by applying multiscale simulations. Here are 4 objectives: to design a bottom-up spatial-scale screening strategy, to design a top-down time-scale screening strategy, to design a model suitable for MOFs, and to predict reaction pathways on such materials.
    Chapter 1 provides a detailed description of the research background, motivation, and framework. Chapter 2 explains the experimental methods and the theories used for simulations. Chapter 3 describes the bottom-up spatial-scale screening strategy's experimental design and research results. Chapter 4 explains the top-down time-scale screening strategy's experimental design and research results. Chapter 5 summarizes the research findings and discusses prospects.
    Through this research, three feasible single-metal reaction centers were proposed as activation catalysts, and another possible form of dual-metal reaction center was suggested as a catalytic center. Additionally, the corresponding reaction mechanisms for these catalytic centers were elucidated.
    Furthermore, the factors influencing the rotation of linkers in metal-organic framework materials and the effects brought by such rotations were also discussed. It is hoped that this research will contribute to the development of related studies on porous materials.

    口試委員會審定書 # 謝誌 i 中文摘要 ii ABSTRACT iii 目次 v 表次 x 圖次 xii 第 1 章 緒論 1 § 1-1 研究背景與動機 1 §1-1-1 多尺度的科學 1 §1-1-2 計算化學 3 1.1.2.1 古典力學的計算化學 8 1.1.2.2 量子力學的計算化學 9 §1-1-3 多尺度的計算化學與工程 11 § 1-2 研究架構 16 §1-2-1 反應選擇與計算 16 1.2.1.1 環境議題與碳中和 16 1.2.1.2 二氧化碳還原反應 19 §1-2-2 材料選擇與建模 21 1.2.2.1 異相催化 21 1.2.2.2 金屬有機框架材料材料 24 1.2.2.3 MOF-253 30 §1-2-3 研究目的 33 § 1-3 結語 34 第 2 章 計算原理 36 § 2-1 量子力學的計算原理 36 §2-1-1 可計算的量子力學 36 2.1.1.1 波恩–歐本海默近似 36 2.1.1.2 獨立電子近似 39 2.1.1.3 哈特里自洽場 40 2.1.1.4 斯雷特行列式與哈特里–佛克方法 41 2.1.1.5 分子軌域與基組 46 2.1.1.6 微擾近似 50 2.1.1.7 哈特里–佛克方法的相關方法 51 §2-1-2 密度泛函理論 58 2.1.2.1 奧昂貝格–柯恩定理 58 2.1.2.2 柯恩–沈方法與局部密度近似 59 2.1.2.3 純泛函與混成泛函 61 2.1.2.4 長距離效應與分散力修正 64 2.1.2.5 贗勢 68 2.1.2.6 固態材料的計算 69 §2-1-3 本研究中的量子力學計算 75 § 2-2 古典力學的計算原理 76 §2-2-1 古典力學的參數 76 2.2.1.1 鍵結勢能 76 2.2.1.2 非鍵結勢能 79 §2-2-2 UFF 80 § 2-3 計算實務 83 §2-3-1 性質的計算 83 2.3.1.1 勢能面與單點能計算 83 2.3.1.2 結構最適化與過渡態探索 84 2.3.1.3 振動光譜計算 87 2.3.1.4 電荷分析 88 2.3.1.5 分子動力學 90 2.3.1.6 粉末X射線繞射模擬 91 §2-3-2 軟體及系統 91 2.3.2.1 Gaussian 16 及 Gaussview 6 91 2.3.2.2 The Vienna Ab initio Simulation Package 92 2.3.2.3 The Amsterdam Modeling Suite 93 2.3.2.4 VESTA 94 2.3.2.5 Python 3.7 94 §2-3-3 硬體 95 2.3.3.1 國立臺灣師範大學理學院雲端運算平臺 95 2.3.3.2 台灣杉一號 95 第 3 章 空間尺度由下到上的篩選模式 97 § 3-1 前言 97 § 3-2 計算方法與參數 100 § 3-3 結果與討論 102 §3-3-1 週期性尺度模型的金屬配位測試 102 §3-3-2 分子模型的二氧化碳還原反應篩選 108 3.3.2.1 預期的反應路徑 109 3.3.2.2 以六配位中心進行二氧化碳活化 112 3.3.2.3 以五配位中心進行二氧化碳活化 115 3.3.2.4 以四配位中心進行二氧化碳活化 119 §3-3-3 週期性尺度模型的二氧化碳還原反應驗證 126 §3-3-4 氯原子轉移的潛在方式 129 §3-3-5 在其他金屬骨架材料的模擬—以 MOF-867 為例 133 § 3-4 結論 137 第 4 章 時間尺度由上到下的篩選模式 139 § 4-1 前言 139 § 4-2 計算方法與參數 144 § 4-3 結果與討論 147 §4-3-1 MOF-253 連結體的動力學現象 147 §4-3-2 客體分子吸附於 MOF-253 的動力學現象 154 §4-3-3 MOF-253 連接體旋轉與粉末 X 射線繞射模擬 162 §4-3-4 對螯合金屬錯合物雙體的 MOF-253反應路徑猜想 166 § 4-4 結論 169 第 5 章 結語與展望 172 參考文獻 174

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