百家乐怎么玩-澳门百家乐官网娱乐城网址_网上百家乐是不是真的_全讯网888 (中国)·官方网站

Efficient bifunctional catalyst enables high-performance zinc-nitrate / ethanol batteries for sustainable energy storage

 

Zinc-nitrate batteries are a primary non-rechargeable energy storage system that utilizes the redox potential difference between zinc and nitrate ions to store and release electrical energy. A research team co-led by chemists from City University of Hong Kong (CityU) have developed a high-performance rechargeable zinc-nitrate/ethanol battery by introducing an innovative catalyst. They successfully designed and synthesized an efficient tetraphenylporphyrin (tpp) modified heterophase rhodium-copper alloy metallene (RhCu M-tpp). This bifunctional catalyst exhibits remarkable capabilities in both the electrocatalytic nitrate reduction reaction (NO3RR) and ethanol oxidation reaction (EOR) in a neutral medium, overcoming the monofunctional limitations of traditional metal-based solid catalysts and providing a valuable reference for the design of sustainable energy storage in the future.

“This study highlights the significance of molecule-metal relay catalysis to efficient NH3 electrosynthesis in NO3RR and offers a multifunctional battery prototype that shows the benefits of metal-based hybrid electrochemical systems on high-performance, sustainable energy storage and conversion,” said Professor Fan Zhanxi, Assistant Professor in the Department of Chemistry at CityU, who led the study, highlighting the significance of the findings.

1
(a) Schematic illustration for the working principle of assembled Zn-nitrate/ethanol batteries. (b) SEM and (c) Low-dose HAADF-STEM images of as-synthesized RhCu M-tpp. (d, e) FFT patterns corresponding to the regions marked by the (d) blue and (e) red dash squares in (c).  (Source: Zhou J., et al., https://doi.org/10.1073/pnas.2311149120)

To elaborate on the uniqueness of the findings, Prof Fan explained that the as-obtained RhCu M-tpp overcomes the challenge of traditional Cu-based catalysts requiring quite negative potential to efficiently convert nitrate to ammonia when conducting NO3RR in a neutral medium. Moreover, based on the superior bifunctionality of as-prepared RhCu M-tpp for both NO3RR and EOR, a rechargeable Zn-nitrate/ethanol battery was successfully constructed to address the poor rechargeability of traditional zinc-nitrate galvanic cells.

Additionally, a molecule-metal relay catalysis mechanism was unraveled in this work, whereby nitrate is firstly reduced to nitrite on tpp, and then the as-generated nitrite is converted into ammonia on metallic sites. This verified the feasibility of molecular surface modification for improving the electrochemical performance of nanometals for NO3RR.

2
(a) Galvanostatic discharge profiles of Zn-nitrate/ethanol batteries with RhCu M-tpp cathodes from OCV to 0.005 V (vs. Zn2?/Zn). Inset: a digital photograph showing the constructed battery device, along with the measurement of OCV. (b) Long-term cycling stability test of as-assembled Zn-nitrate/ethanol and Zn-nitrate batteries. (c) The 1H NMR spectra of the utilized electrolytes at the pristine, discharged and charged states. (d) Digital photograph of a commercial digital clock powered by the constructed Zn-nitrate/ethanol battery. (Source: Zhou J., et al., https://doi.org/10.1073/pnas.2311149120)

The activity of cathode catalysts is crucial for the performance of zinc-nitrate batteries. However, currently, used copper-based catalysts have limitations. They require highly negative applied potential and have weak proton adsorption, resulting in low current density and ammonia yield. Additionally, these catalysts are not suitable for electrocatalytic oxygen evolution reaction (OER), leading to non-rechargeable batteries and poor cycling life.

To address these issues, the research team developed ultrathin bimetallic RhCu metallenes to reduce the energy barrier for copper. After many attempts, they discovered that modifying the surface of RhCu metallenes with a small molecule, called tpp, significantly improved the efficiency of nitrate conversion to ammonia without compromising the performance of metallic substrates in ethanol oxidation. This breakthrough can thus enhance the overall performance of zinc-nitrate batteries.

The research findings offer an effective solution for constructing high-performance, zinc-based hybrid energy systems and provide valuable insights for future catalyst design of multifunctional and environmentally friendly devices.

The findings were published in the scientific journal PNAS, titled “Constructing molecule-metal relay catalysis over heterophase metallene for high-performance rechargeable zinc-nitrate/ethanol batteries”.

3
Professor Fan Zhanxi from the Department of Chemistry at CityU. (Credit: City University of Hong Kong)

For enquiry, please contact Professor Fan Zhanxi from the Department of Chemistry in CityU, by email at zhanxi.fan@cityu.edu.hk.

Contact Information

Back to top
百家乐官网群1188999| 百家乐软件l柳州| 百家乐官网娱乐人物| 百家乐赌场娱乐| 百家乐官网大小是什么| 大地百家乐的玩法技巧和规则| 百家乐官网生活馆拖鞋| 沅江市| 电玩城百家乐官网技巧| 易发| 百家乐大天堂| 属狗与属猪能做生意吗| 澳门百家乐官网规例| 赌博| 大发888线上娱乐城百家乐| 百家乐二代皇冠博彩| 百家乐官网六合彩3535| 皇冠足球| 大发888真人| 威尼斯人娱乐城老品牌lm0| 网上赌百家乐可信吗| 百家乐官网博百家乐官网| 百家乐官网平台信誉排名| 真人游戏机| 澳门百家乐真人娱乐场| 百家乐官网有赢钱公式吗| 大发888娱乐游戏下载 官方网| 百家乐免费送现金| 百家乐怎样做弊| 皇马百家乐官网的玩法技巧和规则 | 广东百家乐主论坛| 狮威百家乐官网娱乐城| 百家乐官网赌场群| 波克棋牌官网| 大发888开户大发娱乐权威吗| 游戏百家乐押金| 百家乐长龙如何判断| 做生意的门的方向| 百家乐官网下注技巧| 百家乐官网网络游戏信誉怎么样| 百家乐官网怎么才能|