Densely colonized isolated Cu-N single sites for efficient bifunctional electrocatalysts and rechargeable advanced Zn-air batteries

A universal strategy for scalable fabrication of single-atoms incorporated hollow nano-spheroids of nitrogen-deficient carbon nitride frameworks for high power/energy aqueous and all-solid-state flexible Zn-air batteries. [Display omitted] •Template-free universal scalable strategic design of densel...

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Veröffentlicht in:Applied catalysis. B, Environmental Environmental, 2020-07, Vol.268, p.118746, Article 118746
Hauptverfasser: Wagh, Nayantara K., Shinde, Sambhaji S., Lee, Chi Ho, Jung, Jin-Young, Kim, Dong-Hyung, Kim, Sung-Hae, Lin, Chao, Lee, Sang Uck, Lee, Jung-Ho
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Sprache:eng
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Zusammenfassung:A universal strategy for scalable fabrication of single-atoms incorporated hollow nano-spheroids of nitrogen-deficient carbon nitride frameworks for high power/energy aqueous and all-solid-state flexible Zn-air batteries. [Display omitted] •Template-free universal scalable strategic design of densely populated single atoms.•Single-atoms (Cu, Co, Fe) inlaid nitrogen-deficient carbon nitride nano-spheroids.•Unique structure offers high surface-volume ratio and active electronic structures.•Cu single-atoms showed superior bifunctional reversibility for oxygen reactions.•Unprecedented cycle life, power/energy for aqueous and flexible solid-state ZABs. The rational design of earth-abundant, highly efficient, and robust bifunctional oxygen electrocatalysts remains a contemporary challenge toward the widespread implementation of reversible metal-air batteries and fuel cells. Here, we report a universal strategy for the fabrication of single-atom (Cu, Co, and Fe) incorporated hollow nano-spheroids of nitrogen-deficient carbon nitride frameworks (CuSA@HNCNx. The interconnected three-dimensional 3D porous and hollow robust single-atom spheroid frameworks display a high surface area of 1286 m2 g−1, favorable electronic structure, local chemical coordination, effective density of active sites (Cu-Nx, pyridinic, graphitic CN etc.), and mass transport pathways. The obtained CuSA@HNCNx exhibited outstanding bifunctional reversible electrocatalytic activity and robustness for oxygen reduction and evolution reactions (ORR half-wave potential of 0.91 V, OER overpotential of 1.55 V at 10 mA cm-2, ΔE = 0.64 V, 5000 cycles), outperforming benchmarked Pt/C and RuO2. Electrocatalytic activity towards ORR/OER was analyzed by d-band center correlation using density functional theory (DFT) calculations. Moreover, reversible alkaline Zn-air batteries with the designed CuSA@HNCNx cathode illustrated a high power 212 mW cm-2, high energy density 1031 Wh kgZn−1, and excellent discharge-charge cycle life of 1800 cycles for 300 h @10 mA cm-2 with voltaic efficiency of 64.51 %. Notably, all-solid-state flexible ZABs showed long cycle life of 250 h with 1500 cycles at 25 mA cm-2 with efficiency of 66.31 %. This unique strategy offers controlled design of entangled single-atom frameworks as advanced cathodes for next-generation energy storage technology.
ISSN:0926-3373
1873-3883
DOI:10.1016/j.apcatb.2020.118746