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低鉑燃料電池技術(shù)(英文版)

低鉑燃料電池技術(shù)(英文版)

定 價(jià):¥119.00

作 者: 章俊良,沈水云
出版社: 上海交通大學(xué)出版社
叢編項(xiàng):
標(biāo) 簽: 暫缺

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ISBN: 9787313248008 出版時(shí)間: 2021-05-01 包裝: 精裝
開(kāi)本: 16開(kāi) 頁(yè)數(shù): 222 字?jǐn)?shù):  

內(nèi)容簡(jiǎn)介

  本書(shū)為“能源與環(huán)境出版工程”叢書(shū)之一。主要內(nèi)容包括各類低鉑和超低鉑氧化還原催化劑材料、低鉑膜電極中物質(zhì)(氧氣、質(zhì)子)的傳輸過(guò)程和機(jī)理、鉑基催化劑和膜電極的衰減機(jī)制等。本書(shū)內(nèi)容豐富,具有很強(qiáng)的科學(xué)前沿性,指明了質(zhì)子交換膜燃料電池低鉑化的催化劑和膜電極發(fā)展策略。本書(shū)可供高等院校燃料電池專業(yè)以及相關(guān)學(xué)科的本科生和研究生使用,也可供新能源、新材料等相關(guān)領(lǐng)域的科研人員和工程人員閱讀和參考。

作者簡(jiǎn)介

  章俊良,上海交通大學(xué)“致遠(yuǎn)”講席教授,燃料電池研究所所長(zhǎng),上海市“東方學(xué)者”特聘教授(2009),Electrocatalysis 國(guó)際期刊編委。1994年和1997年畢業(yè)于上海交大,分別獲學(xué)士和碩士學(xué)位,2005年于美國(guó)紐約州立大學(xué)石溪分校獲博士學(xué)位。

圖書(shū)目錄

Chapter 1 Proton Exchange Membrane Fuel Cells (PEMFCs)
1.1 Introduction
1.2 PEMFC Components
1.3 Membrane Electrode Assembly (MEA)
1.3.1 MEA Structure
1.3.2 Proton Exchange Membrane (PEM)
1.3.3 Catalyst Laver
1.3.4 Gas Diffusion Layer (GDL)
1.4 Electrocatalysts
1.4.1 Pt/C Catalysts
1.4.2 Pt Alloy/C Catalysts
1.4.3 Core-Shell Catalysts
1.4.4 Shape-Controlled Pt-Based Nanocrystals
1.4.5 Nonprecious Metal Catalysts (NPMC)
1.5 Summary
References
Chapter 2 The Electrocatalysis of Oxygen Reduction on Platinum
and Its Alloys
2.1 Introduction
2.1.1 Cathode Reaction
2.1.2 Platinum and Platinum-Based Catalysts
2.2 Reac
Reaction Mechanism
2.2.1 The Dissociation Mechanism and the Association
Mechanism
2.2.2 Theoretical Analysis on Pt Activity Toward the ORR
2.3 Electrochemical Measurements
2.4 Further Improvement Toward Pt Activity
2.4.1 Pt Nanonartielee"uuu
2.4.2 An Organic Solvent System-Assisted Electrodeposition
of Highly Active p "y
2.5 Pt-Based Alloys
2.5.1 Theoretical Analysis on Pt-Based Alloys Activity Toward
the ORR
2.5.2 Composiftion Effects
2.5.3 The Co-Reduction of Pt with Co lons
2.5.4 Crystallographic Orientation Effects
2.5.5 Icosahedral Pt-Ni Nanocrystalline Electrocatahst
2.5.6 Stability
2.5.7 Thermal Annealing Synthesis of Double-Shell Truncated
Octahedral Pt_Ni Allovs
2.6 Outlook
References
Chapter 3 Pt-MS Electrocatalysts for ORR
3.1 Introduction
3.2 Cu UPD Coupled with Pi2+ Galvanic Replacement
3.3 Pt MSs on Single-Crystal Metal Electrodes for ORR
3.3.1 Efects of Substrates on Pt MSs for ORR
3.3.2 Volcano-Type Relation Berween Electrocatalytic
Activity and d-Band Center for ORR on Pt MS
3.3.3 Summary
3.4 Pt MSs on Pd(111) and Carbon-Supported Pd NPs for ORR
3.4.1 Pt MSs Deposited on Pd(111) and Pd NPs
3.4.2 P MS on a Pd(111) Surface for ORR
3.4.3 Pt MSs on Carbon-Supported Pd NPs for ORR
3.4.4 Fuel Cell Tests for Pt-MS Electrocatalysts
3.4.5 Discussion
3.4.6 Summary
3.5 Mixed Pt-M-MS Electrocatalysts for ORR
3.5.1 ORR on Mo2wn/Pt(l11)
3.5.2 ORR on (M o2Pto8)M/Pd(111)
3.5.3 ORR on (Ma sPtos)ur/Pd NPs/C
3.5.4 Summary
3.6 Pt MSs on Carbon-Supported Au-Ni NPs for ORR
3.6 .I Electrochemical and XRD Characterization
of Au/Ni NPs
3.6.2 ORR Electrocatalytic Properties
3.6.3 Fuel Cell Tests
3.6.4 XANES Measurements
3.6.5 Discussion
3.6.6 Summary
3.7 Pt MSs on Carbon-Supported PdNi1-x NSs for ORR
3.7 .I Phvsicachemical Characterizations of Pd, Ni1
and PdxNi1-x@Pt NSs
3.7.2 Greatly Enhanced Pd Utilization for the Cu UPD
On PdxNi1-x@Pt NSs
3.7.3 ORR Electrocatalytic Properties
3.7.4 Summary
Reference
Chapter 4 Membrane Electrode Assembly (MEA)
4.1 Introduction
4.1 .I Reaction and Mass Transport Process in Fuel Cells
4.1.2 Structure in CLs and Iis Characterization
4.2 Proton Transport in Electrode
4.3 Oxygen Transport in Electrode
4.3.1 Local and Bulk Oxygen Transport in CLs
4.3.2 Experimental Measurement of Local and Bulk Oxygen
Transport Resistance .vy
4.3.3 Influence of Ionomer Content on Local
and Bulk Oxygen Transport Resistance
4.3.4 Mechanism oj Bulk Uaygen Iransport Behavior
4.3.5 Mechanism of Local Oxygen Transport Behavior
4.4 Cation Contamination in Electrode- r
References
Chapter 5 Degradation of Pt-Based Catalysts in PE MFC
5.1 Introduction
5.2 Pi Deoradation
5.2.1 pt Deeradation Mechanisms
5.2.2 Experimental Observation of Pt Degradation
5.2.3 Mathematical Modeling of Pt Degradation
5.2.4 Mitigation Strategies for Pt Degradation
in the Cathode
5.3 Pt-Based Alloy Degradation
5.3.1 Pt-Based Alloy Degradation

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