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首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >A coordination polymer-derived Co3O4/Co-N@NMC composite material as a Zn-air battery cathode electrocatalyst and microwave absorber
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A coordination polymer-derived Co3O4/Co-N@NMC composite material as a Zn-air battery cathode electrocatalyst and microwave absorber

机译:作为Zn-Fail电池阴极电催化剂和微波吸收器的配位聚合物衍生的CO3O4 / CO-N-N-NMC复合材料

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摘要

Zn-air batteries, promising energy storage equipment with high energy density, light weight and a compact structure, are a perfect power source for electric vehicles. For a Zn-air battery, the activity of the air cathode electrocatalyst plays an important role in its performance. Here, employing a coordination polymer as a precursor, a composite material built from Co3O4 and Co-N active centres with nitrogen-doped mesoporous carbon as a matrix has been synthesized successfully. This composite material possesses outstanding activity and stability in the oxygen reduction reaction (ORR) and oxygen evolution reaction (OER) processes. It possesses a small half-wave potential (ORR1/2 = 0.786 V) and low overpotential (OER10 = 1.575 V) for the ORR and OER, respectively. With this composite material as an air cathode electrocatalyst, a rechargeable Zn-air battery was assembled successfully. During the discharge process, the maximum power density of this Zn-air battery is 122 mW cm(-2) at 0.76 V. The specific capacity of this battery is 505 mA h g(-1) at 25 mA cm(-2). The voltage gap between the charge and discharge processes is only 0.744 V at 10 mA cm(-2) and 1.308 V at 100 mA cm(-2). This rechargeable battery also shows promising stability after long-term charge-discharge experiments. Furthermore, the composite material also exhibits outstanding microwave adsorption properties. Its maximum reflection loss (RL) arrives at -13.9 dB with a thickness of only 1.0 mm. Thus, we find that coordination polymers are an ideal precursor for Zn-air battery cathode electrocatalysts and microwave absorbers.
机译:Zn-Air电池,具有高能量密度,重量轻,结构紧凑的能量存储设备,是电动车辆的完美电源。对于Zn-air电池,空气阴极电催化剂的活性在其性能中起着重要作用。这里,采用配位聚合物作为前体,成功地合成了由Co3O4和Co-N活性中心构成的复合材料作为基质的氮掺杂的介孔碳。该复合材料在氧还原反应(ORR)和氧气进化反应(OER)方法中具有出色的活性和稳定性。它分别具有小的半波电位(ORR1 / 2 = 0.786V),分别用于ORR和OER的低过电(OER10 = 1.575 V)。通过作为空气阴极电催化剂的这种复合材料,成功地组装了可充电Zn-Abile。在放电过程中,该Zn-空气电池的最大功率密度为0.76V。该电池的比容量为505mA H(-1),在25 mA cm(-2)。电荷和放电过程之间的电压间隙在10mA cm(-2)中仅为0.744V,在100mA cm(-2)下为1.308V。这种可充电电池还显示出长期充电实验后的有希望的稳定性。此外,复合材料还表现出优异的微波吸附性能。其最大反射损耗(RL)到达-13.9 dB,厚度仅为1.0毫米。因此,我们发现协调聚合物是Zn-空气电池阴极电催化剂和微波吸收剂的理想前驱体。

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    Northeast Univ Coll Sci Dept Chem Shenyang 110819 Liaoning Peoples R China;

    Northeast Univ Coll Sci Dept Chem Shenyang 110819 Liaoning Peoples R China;

    Northeast Univ Coll Sci Dept Chem Shenyang 110819 Liaoning Peoples R China;

    Northeastern Univ Minist Educ Key Lab Electromagnet Proc Mat Shenyang 110819 Liaoning Peoples R China;

    Shenyang Univ Technol Coll Sci Econ &

    Technol Dev Zone 111 Shenliao West Rd Shenyang 110870 Liaoning Peoples R China;

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  • 正文语种 eng
  • 中图分类 化学;无机化学;
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