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Zongping Shao

Researcher at Nanjing Tech University

Publications -  891
Citations -  55259

Zongping Shao is an academic researcher from Nanjing Tech University. The author has contributed to research in topics: Oxide & Perovskite (structure). The author has an hindex of 94, co-authored 764 publications receiving 39128 citations. Previous affiliations of Zongping Shao include University of Western Australia & Samsung.

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Controllably grown single-crystal films as flexoelectric nanogenerators for continuous direct current output

TL;DR: In this paper , a controllable growth technique for two-dimensional (2-D) cuprous oxide (p-Cu 2 O) single-crystal films, and on this basis, a new concept of 2-D singlecrystal film flexoelectric nanogenerators (FENGs) are rationally designed and constructed for the first time, which has the characteristics of long-range order lattice, few grain boundaries and defects.
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Organic ligand-facilitated in situ exsolution of CoFe alloy over Ba0.5Sr0.5Co0.8Fe0.2O3 perovskite toward enhanced oxygen electrocatalysis for rechargeable Zn-air batteries

TL;DR: Cobalt-based perovskites are promising electrocatalysts for oxygen evolution/reduction reaction (OER/ORR), while their surface modification with nanoparticles may further improve the performance as discussed by the authors .
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Thin Films Fabricated by Pulsed Laser Deposition for Electrocatalysis

TL;DR: Sun et al. as mentioned in this paper presented the latest studies in which thin film materials (mainly focused on perovskite oxide thin films) via Pulsed Laser Deposition (PLD) have been actively utilized in the field of electrocatalysis.
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Cathode water management towards improved performance of protonic ceramic fuel cells

TL;DR: In this article , the optimal performance of protonic ceramic fuel cells (PCFCs) cathodes at 600 °C was shown at different water content in the air atmosphere of 472, 592 and 735 mW cm−2, respectively, showing increased peak power density (PPD) of 13%, 10% and 6% of the corresponding cells as compared to that operating near static air atmosphere.