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首页> 外文期刊>Nano Energy >NiFe nanoparticles embedded N-doped carbon nanotubes as high-efficient electrocatalysts for wearable solid-state Zn-air batteries
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NiFe nanoparticles embedded N-doped carbon nanotubes as high-efficient electrocatalysts for wearable solid-state Zn-air batteries

机译:NiFe纳米颗粒嵌入N掺杂的碳纳米管,作为可穿戴固态Zn-Air电池的高效电催化剂

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Wearable and rechargeable Zn-air batteries (ZABs) hold great potential application in flexible electronic devices, and light-weight power sources for their high energy density and good safety. However, the practical application of ZABs is hindered by their low power density and poor rechargeability, which arises from the sluggish kinetics of oxygen reduction reaction (ORR) and oxygen evolution reaction (OER) on air cathode. Herein, a high-power, wearable ZAB with impressive electrochemical performances is achieved based on a new NiFe nanoparticles embedded N-doped carbon nanotubes (NiFe/N-CNT) as bifunctional electrocatalyst. The in-situ Raman and oxygen adsorption and DFT calculations reveal that our designed NiFe/N-CNT catalyst can remarkably promote the oxygen adsorption in ORR and OH- adsorption in OER, which enable this NiFe/N-CNT to own superior electrocatalytic activity toward both OER and ORR. The as-fabricated wearable ZAB with the NiFe/N-CNT as air cathode exhibits an ultrahigh open-circuit potential (Voc) of 1.41 V and a remarkable high peak power density of 105.4 mW cm(-2), Furthermore, it also obtains a small charge-discharge voltage gap of 0.61 V and superior durability for 800 min. This research provides a new design pathway for the electrocatalysts for high-performance rechargeable and wearable metal-air batteries.
机译:可穿戴和可充电的Zn-Air电池(ZABs)在柔性电子器件中保持巨大的潜在应用,以及高能量密度和良好安全性的轻量级电源。然而,Zabs的实际应用受它们的低功率密度和可再核性差的阻碍,这产生了来自氧还原反应(ORR)和空气阴极上的氧进化反应(Oer)的缓慢动力学。这里,基于新的NiFe纳米颗粒嵌入的N掺杂碳纳米管(NIFE / N-CNT)作为双官能电催化剂,实现具有令人印象深刻的电化学性能的高功率佩戴性ZAB。原位拉曼和氧气吸附和DFT计算表明,我们所设计的NiFE / N-CNT催化剂可以显着促进OER中的ORR和OH-吸附的氧气吸附,这使得该NIFE / N-CNT能够朝向oer和orr。作为空气阴极的NiFe / N-CNT的耐磨型镀扣具有1.41V的超高开关电位(VOC),并且还获得了105.4 mW cm(-2)的显着高峰功率密度,还获得小充电 - 放电电压差距为0.61V,耐高采烈800分钟。本研究为电催化剂提供了一种新的设计途径,适用于高性能可再充电和可穿戴金属气体电池。

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