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    2020年 第3卷 第2期    刊出日期:2020-06-20
    REVIEW ARTICLE
    From Liquid-to Solid-State Batteries: Ion Transfer Kinetics of Heteroionic Interfaces
    Manuel Weiss, Fabian J. Simon, Martin R. Busche, Takashi Nakamura, Daniel Schr?der, Felix H. Richter, Jürgen Janek
    2020, 3(2):  221-238.  doi:10.1007/s41918-020-00062-7
    摘要 ( 762 )   PDF  
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    Hybrid battery cells combining liquid electrolytes (LEs) with inorganic solid electrolyte (SE) separators or different SEs and polymer electrolytes (PEs), respectively, are developed to solve the issues of single-electrolyte cells. Among the issues that can be solved are detrimental shuttle effects, decomposition reactions between the electrolyte and the electrodes, and dendrite propagation. However, the introduction of new interfaces by contacting different ionic conductors leads to other problems, which cannot be neglected before commercialization is possible. The interfaces between the different types of ionic conductors (LE/SE and PE/SE) often result in significant charge-transfer resistances, which increase the internal resistance considerably. This review highlights studies evaluating the interfacial resistances and activation barriers in such systems to present an overview of the issues still hampering hybrid battery systems. The interfaces between different SEs in hybrid all-solid-state batteries (SSBs) are considered as well. In addition, a short summary of physicochemical models describing heteroionic interfaces-interfaces between two different ion conductors-is given in an attempt to explain high interface resistances. In doing so, we hope to inspire future work on the crucial topic of interface optimization toward better SSBs.


    Full-text:https://link.springer.com/article/10.1007/s41918-020-00062-7/fulltext.html

    Electrochemical Synthesis of Ammonia from Nitrogen Under Mild Conditions: Current Status and Challenges
    Yao Yao, Jing Wang, Usman Bin Shahid, Meng Gu, Haijiang Wang, Hui Li, Minhua Shao
    2020, 3(2):  239-270.  doi:10.1007/s41918-019-00061-3
    摘要 ( 819 )   PDF  
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    The electrochemical synthesis of ammonia under mild conditions has attracted significant interest in recent years because it can allow for the direct conversion of renewable electricity to chemical energy in the form of ammonia, which is an ideal medium for energy storage and transportation. And in contradistinction to the Haber-Bosch process, the electrochemical synthesis of ammonia is a much more environmentally friendly process that can operate under mild conditions with zero carbon dioxide (CO2) emission. However, this process is severely hindered by poor ammonia formation rates and Faradaic efficiency due to the competing hydrogen evolution reaction. Based on this, a review focused on the current status and challenges of the electrochemical synthesis of ammonia is imperative to promulgate this key process and promote future research. And therefore, this review will systematically survey the recent progress of the electrochemical synthesis of ammonia; and different from previous reviews, this review will include not only advances in electrocatalysts, but also in reactors, electrolytes and reaction mechanisms. In addition, future research directions and strategies to improve the performance of ammonia electrochemical synthesis systems are proposed with the aim of shedding light on the future direction of ammonia synthesis through nitrogen electrochemical reduction.


    Full-text:https://link.springer.com/article/10.1007/s41918-019-00061-3/fulltext.html

    Supercapatteries as High-Performance Electrochemical Energy Storage Devices
    Linpo Yu, George Zheng Chen
    2020, 3(2):  271-285.  doi:10.1007/s41918-020-00063-6
    摘要 ( 893 )   PDF  
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    The development of novel electrochemical energy storage (EES) technologies to enhance the performance of EES devices in terms of energy capacity, power capability and cycling life is urgently needed. To address this need, supercapatteries are being developed as innovative hybrid EES devices that can combine the merits of rechargeable batteries with the merits of supercapacitors into one device. Based on these developments, this review will present various aspects of supercapatteries ranging from charge storage mechanisms to material selection including electrode and electrolyte materials. In addition, strategies to pair diferent types of electrode materials will be discussed and proposed, including the bipolar stacking of multiple supercapattery cells internally connected in series to enhance the energy density of stacks by reducing the number of bipolar plates. Furthermore, challenges for this stack design will also be discussed together with recent progress on bipolar plates.


    Full-text:https://link.springer.com/article/10.1007/s41918-020-00063-6

    Defect Engineering in Titanium-Based Oxides for Electrochemical Energy Storage Devices
    Zhong Su, Jiahua Liu, Meng Li, Yuxuan Zhu, Shangshu Qian, Mouyi Weng, Jiaxin Zheng, Yulin Zhong, Feng Pan, Shanqing Zhang
    2020, 3(2):  286-343.  doi:10.1007/s41918-020-00064-5
    摘要 ( 921 )   PDF  
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    Defect engineering involves the manipulation of the type, concentration, mobility or spatial distribution of defects within crystalline structures and can play a pivotal role in transition metal oxides in terms of optimizing electronic structure, conductivity, surface properties and mass ion transport behaviors. And of the various transition metal oxides, titanium-based oxides have been keenly investigated due to their extensive application in electrochemical storage devices in which the atomic-scale modification of titanium-based oxides involving defect engineering has become increasingly sophisticated in recent years through the manipulation of the type, concentration, spatial distribution and mobility of defects. As a result, this review will present recent advancements in defect-engineered titanium-based oxides, including defect formation mechanisms, fabrication strategies, characterization techniques, density functional theory calculations and applications in energy conversion and storage devices. In addition, this review will highlight trends and challenges to guide the future research into more efficient electrochemical storage devices.


    Full-text:https://link.springer.com/article/10.1007/s41918-020-00064-5

    Recent Developments for Aluminum-Air Batteries
    Ryohei Mori
    2020, 3(2):  344-369.  doi:10.1007/s41918-020-00065-4
    摘要 ( 654 )   PDF  
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    Environmental concerns such as climate change due to rapid population growth are becoming increasingly serious and require amelioration. One solution is to create large capacity batteries that can be applied in electricity-based applications to lessen dependence on petroleum. Here, aluminum-air batteries are considered to be promising for next-generation energy storage applications due to a high theoretical energy density of 8.1 kWh kg-1 that is signifcantly larger than that of the current lithium-ion batteries. Based on this, this review will present the fundamentals and challenges involved in the fabrication of aluminum-air batteries in terms of individual components, including aluminum anodes, electrolytes and air cathodes. In addition, this review will discuss the possibility of creating rechargeable aluminum-air batteries.

    Full-text:https://link.springer.com/article/10.1007/s41918-020-00065-4

    Recent Progress in Graphene-Based Nanostructured Electrocatalysts for Overall Water Splitting
    Asad Ali, Pei Kang Shen
    2020, 3(2):  370-394.  doi:10.1007/s41918-020-00066-3
    摘要 ( 779 )   PDF  
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    Graphene-based nanomaterials are promising bifunctional electrocatalysts for overall water splitting (OWS) to produce hydrogen and oxygen as sustainable fuel sources because graphene-based bifunctional electrocatalysts can provide distinct features such as large surface areas, more active sites and facile synthesis of multiple co-doped nanomaterials. Based on this, this review will present recent advancements in the development of various bifunctional graphene-based electrocatalysts for OWS reactions and discuss advancements in the tuning of electronic surface-active sites for the electrolytic splitting of water. In addition, this review will evaluate perspectives and challenges to provide a deep understanding of this emerging field.


    Full-text:https://link.springer.com/article/10.1007/s41918-020-00066-3

    Graphene for Energy Storage and Conversion: Synthesis and Interdisciplinary Applications
    Liqi Bai, Yihe Zhang, Wangshu Tong, Li Sun, Hongwei Huang, Qi An, Na Tian, Paul K. Chu
    2020, 3(2):  395-430.  doi:10.1007/s41918-019-00042-6
    摘要 ( 1560 )   PDF  
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    2D graphene materials possess excellent electrical conductivity and an sp2 carbon atom structure and can be applied in light and electric energy storage and conversion applications. However, traditional methods of graphene preparation cannot keep pace with real-time synthesis, and therefore, novel graphene synthesis approaches have attracted increasing attention from researchers to accurately control graphene structure and morphology. Based on this, this review will discuss the novel synthesis of graphene for interdisciplinary applications of energy storage and conversion, which is a promising direction in the research for novel applications in photoelectrochemical cells, photo-assisted batteries, piezoelectric nanogenerators, photothermal and photomechanical devices, etc.


    Full-text:https://link.springer.com/article/10.1007/s41918-019-00042-6

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