Wang Yaqin, Xu Xinxin, Liu Luyao, Chen Jin, Shi Guimei
Department of Chemistry, College of Science, Northeast University, Shenyang, 110819, P.R. China.
Dalton Trans. 2019 May 28;48(21):7150-7157. doi: 10.1039/c8dt03792b.
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.
锌空气电池是一种很有前景的储能设备,具有高能量密度、重量轻和结构紧凑的特点,是电动汽车的理想电源。对于锌空气电池来说,空气阴极电催化剂的活性对其性能起着重要作用。在此,以一种配位聚合物为前驱体,成功合成了一种以氮掺杂介孔碳为基质、由Co3O4和Co-N活性中心构建的复合材料。这种复合材料在氧还原反应(ORR)和析氧反应(OER)过程中具有出色的活性和稳定性。它在ORR和OER中分别具有较小的半波电位(ORR1/2 = 0.786 V)和较低的过电位(OER10 = 1.575 V)。以这种复合材料作为空气阴极电催化剂,成功组装了可充电锌空气电池。在放电过程中,这种锌空气电池在0.76 V时的最大功率密度为122 mW cm-2。该电池在25 mA cm-2时的比容量为505 mA h g-1。在10 mA cm-2时充放电过程之间的电压间隙仅为0.744 V,在100 mA cm-2时为1.308 V。经过长期充放电实验后,这种可充电电池也显示出良好的稳定性。此外,该复合材料还表现出出色的微波吸收性能。其最大反射损耗(RL)在厚度仅为1.0 mm时达到-13.9 dB。因此,我们发现配位聚合物是锌空气电池阴极电催化剂和微波吸收剂的理想前驱体。