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首页> 外文期刊>RSC Advances >Phosphorus/nitrogen co-doped and bimetallic MOF-derived cathode for all-solid-state rechargeable zinc–air batteries
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Phosphorus/nitrogen co-doped and bimetallic MOF-derived cathode for all-solid-state rechargeable zinc–air batteries

机译:用于全固态可充电锌空气电池的磷/氮共掺杂和双金属MOF衍生阴极

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摘要

With the merits of high safety and energy density, all-solid-state zinc–air batteries possess potential applications in flexible and wearable electronic devices. Especially, the air cathodes with bifunctional catalytic activity, i.e. oxygen reduction reaction (ORR) and oxygen evolution reaction (OER) have been received enormous attention. In this work, we provide a novel phosphorus/nitrogen co-doped and bimetallic metal–organic framework (MOF)-derived cathode configurated with phosphorus-doped bimetallic FeNi alloys and a nitrogen-doped porous carbon layer loaded on graphene (P–FeNi/NC@G). The P–FeNi/NC@G electrode exhibits a superior OER activity with an overpotential of 310 mV at 10 mA cm ~(?2) and an ORR performance with a half-wave potential of 0.81 V. With P–FeNi/NC@G as the air cathode, the integrated all-solid-state rechargeable zinc–air battery presents a high open-circuit voltage of 1.53 V, a high peak power density of 159 mW cm ~(?2) , a small charge–discharge voltage gap of 0.73 V at 5 mA cm ~(?2) , as well as excellent long-term stability up to 144 cycles. This work not only expands the air cathode materials database but also develops a new co-doped synthesis method that can be utilized to fabricate a cathode with promoted catalytic efficiency, resulting in improved performance for an all-solid-state zinc–air battery.
机译:通过高安全性和能量密度的优点,全固态锌 - 空气电池具有柔性耐磨电子设备的潜在应用。特别是,具有双官能催化活性的空气阴极,即氧还原反应(ORR)和氧气进化反应(OER)受到了巨大的关注。在这项工作中,我们提供一种新型磷/氮共掺杂和双金属 - 金属 - 有机骨架(MOF)的阴极,其与磷掺杂的双金属Feni合金和装载在石墨烯上的氮掺杂多孔碳层(P-Feni / nc @ g)。 P-FENI / NC @ G电极具有优异的OER活动,其过电位为10 mA cm〜(Δ2),具有0.81 V的半波电位的ORR性能。与p-feni / nc @ G作为空气阴极,集成的全固态可充电锌 - 空气电池呈现为1.53 V的高开路电压,高峰功率密度为159 mW〜(Δ2),小充电 - 放电电压。 5 mA cm〜(α2)的间隙为0.73V,以及优异的长期稳定性,可达144个循环。这项工作不仅扩大了空气阴极材料数据库,而且还开发了一种新的共掺杂合成方法,可用于制造具有促进催化效率的阴极,从而改善了全固态锌空气电池的性能。

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