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Pengfei Zhang

Bio: Pengfei Zhang is an academic researcher from Beijing Institute of Technology. The author has contributed to research in topics: Materials science & Battery (electricity). The author has an hindex of 2, co-authored 6 publications receiving 18 citations.

Papers
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Journal ArticleDOI
TL;DR: In this paper, the authors analyzed the nucleation and dendrite growth of zinc dendrites based on the existing theoretical models of zinc growth, and the measures to optimize the electric field distribution on the electrode surface are summarized, enhancing the migration of zinc ions and removing dendritic free zinc deposition.

116 citations

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TL;DR: In this paper, advances in aspects of conductivity, mechanical toughness, environmental adaptability, and interfacial compatibility of hydrogel electrolytes for flexible zinc-air batteries are investigated.

28 citations

Journal ArticleDOI
TL;DR: In this paper , a new energy storage device has received unprecedented attention driven by the goals of carbon neutrality and carbon peaking and the deepening of the concept of green energy. Compared with lithium-ion...
Abstract: New energy storage devices have received unprecedented attention driven by the goals of carbon neutrality and carbon peaking and the deepening of the concept of green energy. Compared with lithium-ion...

19 citations

Journal ArticleDOI
TL;DR: In this article, a new strategy for optimizing the solid-state electrolyte/electrode interface coupling was proposed by combining porous zinc electrode and thermal-sensitive solid state electrolyte F127 to improve the areal capacity of SZABs.

19 citations

Journal ArticleDOI
TL;DR: In this paper , a double cross-linked high-performance gel electrolyte (PAAK-M) for flexible zinc-air batteries, which is synthesized by polymerization of acrylamide (AM) monomer with the neutralized product of acrylic acid (AA) and potassium hydroxide (KOH) under heating conditions, is presented.

14 citations


Cited by
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01 Jan 2008
Abstract: The air electrode, which reduces oxygen (O2), is a critical component in energy generation and storage applications such as fuel cells and metal/air batteries. The highest current densities are achieved with platinum (Pt), but in addition to its cost and scarcity, Pt particles in composite electrodes tend to be inactivated by contact with carbon monoxide (CO) or by agglomeration. We describe an air electrode based on a porous material coated with poly(3,4-ethylenedioxythiophene) (PEDOT), which acts as an O2 reduction catalyst. Continuous operation for 1500 hours was demonstrated without material degradation or deterioration in performance. O2 conversion rates were comparable with those of Pt-catalyzed electrodes of the same geometry, and the electrode was not sensitive to CO. Operation was demonstrated as an air electrode and as a dissolved O2 electrode in aqueous solution.

423 citations

Journal ArticleDOI
TL;DR: In this article, a comprehensive review of interfacial strategies for aqueous Zn-ion batteries is presented, including designing mechanisms, creating new methods, and technical challenges, as well as the effectiveness evaluation techniques for interfacial strategy, including electrochemical methods, characterization measurements, and computational simulations.
Abstract: Aqueous Zn-ion batteries (ZIBs) have inspired an overwhelming number of literature studies due to their safety, cost effectiveness, and environmental benignity. Directly employing metallic Zn foil as an anode significantly simplifies battery manufacturing and simultaneously broadens the operating voltage window of aqueous batteries, benefiting from its high overpotential against electrolyte decomposition. Nevertheless, serious issues, such as dendrite growth and side reactions, occurring at the Zn/electrolyte interphase, make the Coulombic efficiency and lifespan of Zn metal electrodes far from satisfactory, which has also been motivating new research interest in interfacial engineering to solve these problems. Owing to the rapid evolution of this new area, it is highly desirable to provide current and timely updates of interfacial strategies and their effectiveness evaluation. From the two sides – the electrode and the electrolyte at the interphase – this review thoroughly summarizes our fundamental understanding of interfacial strategies, including designing mechanisms, creating new methods, and technical challenges. Importantly, this review also analyses the effectiveness evaluation techniques for interfacial strategies, including electrochemical methods, characterization measurements, and computational simulations, providing guidelines for the accurate evaluation and analysis of ZIBs in the future.

191 citations

Journal ArticleDOI
TL;DR: In this paper , a comprehensive overview of existing Zn anode issues and the corresponding strategies, frontiers, and development trends is proposed to deeply comprehend the essence and inner connection of degradation mechanism and performance.
Abstract: The rapid advance of mild aqueous zinc-ion batteries (ZIBs) is driving the development of the energy storage system market. But the thorny issues of Zn anodes, mainly including dendrite growth, hydrogen evolution, and corrosion, severely reduce the performance of ZIBs. To commercialize ZIBs, researchers must overcome formidable challenges. Research about mild aqueous ZIBs is still developing. Various technical and scientific obstacles to designing Zn anodes with high stripping efficiency and long cycling life have not been resolved. Moreover, the performance of Zn anodes is a complex scientific issue determined by various parameters, most of which are often ignored, failing to achieve the maximum performance of the cell. This review proposes a comprehensive overview of existing Zn anode issues and the corresponding strategies, frontiers, and development trends to deeply comprehend the essence and inner connection of degradation mechanism and performance. First, the formation mechanism of dendrite growth, hydrogen evolution, corrosion, and their influence on the anode are analyzed. Furthermore, various strategies for constructing stable Zn anodes are summarized and discussed in detail from multiple perspectives. These strategies are mainly divided into interface modification, structural anode, alloying anode, intercalation anode, liquid electrolyte, non-liquid electrolyte, separator design, and other strategies. Finally, research directions and prospects are put forward for Zn anodes. This contribution highlights the latest developments and provides new insights into the advanced Zn anode for future research.

114 citations

Journal ArticleDOI
TL;DR: In this paper , a comprehensive overview of existing Zn anode issues and the corresponding strategies, frontiers, and development trends is proposed to deeply comprehend the essence and inner connection of degradation mechanism and performance.
Abstract: The rapid advance of mild aqueous zinc-ion batteries (ZIBs) is driving the development of the energy storage system market. But the thorny issues of Zn anodes, mainly including dendrite growth, hydrogen evolution, and corrosion, severely reduce the performance of ZIBs. To commercialize ZIBs, researchers must overcome formidable challenges. Research about mild aqueous ZIBs is still developing. Various technical and scientific obstacles to designing Zn anodes with high stripping efficiency and long cycling life have not been resolved. Moreover, the performance of Zn anodes is a complex scientific issue determined by various parameters, most of which are often ignored, failing to achieve the maximum performance of the cell. This review proposes a comprehensive overview of existing Zn anode issues and the corresponding strategies, frontiers, and development trends to deeply comprehend the essence and inner connection of degradation mechanism and performance. First, the formation mechanism of dendrite growth, hydrogen evolution, corrosion, and their influence on the anode are analyzed. Furthermore, various strategies for constructing stable Zn anodes are summarized and discussed in detail from multiple perspectives. These strategies are mainly divided into interface modification, structural anode, alloying anode, intercalation anode, liquid electrolyte, non-liquid electrolyte, separator design, and other strategies. Finally, research directions and prospects are put forward for Zn anodes. This contribution highlights the latest developments and provides new insights into the advanced Zn anode for future research.

99 citations