The poor reversibility of Zn anodes induced by dendrite growth,surface passivation,and corrosion,severely hinders the practical applicability of Zn metal batteries.To address these issues,a plasmaassisted aerogel(PAG)...The poor reversibility of Zn anodes induced by dendrite growth,surface passivation,and corrosion,severely hinders the practical applicability of Zn metal batteries.To address these issues,a plasmaassisted aerogel(PAG)interface engineering was proposed as efficient ion transport modulator that can simultaneously regulate uniform Zn^(2+)flux and desolvation behavior during battery operation.The PAG with ordered mesopores acted as an ion sieve to homogenize Zn deposition and accelerate Zn^(2+)flux,which is favorable for corrosion resistance and dendrite suppression.Importantly,the plasma-assisted aerogel with abundant hydrophilic groups can facilitate the desolvation kinetics of Zn^(2+)due to the multiple hydrogen-bonding interaction with the activated water molecules,thus accelerating the Zn^(2+)migration kinetics.Consequently,the Zn/Zn cell assembled with PAG-modified separator demonstrates stable plating and stripping behavior(over 1400 h at 1 mA cm^(-2))and high Coulombic efficiency(99.8%at1 mA cm^(-2)after 1100 cycles),and the Zn‖MnO_(2)full cell shows excellent long-term cycling stability and maintains a high capacity of 154.9 mA h g^(-1)after 1000 cycles at 1 A g^(-1).This study provides a feasible approach for the large-scale fabrication of aerogel functionalized separators to realize ultra-stable Zn metal batteries.展开更多
Magnesium ion batteries(MIBs)are a potential field for the energy storage of the future but are restricted by insufficient rate capability and rapid capacity degradation.Magnesium-sodium hybrid ion batteries(MSHBs)are...Magnesium ion batteries(MIBs)are a potential field for the energy storage of the future but are restricted by insufficient rate capability and rapid capacity degradation.Magnesium-sodium hybrid ion batteries(MSHBs)are an effective way to address these problems.Here,we report a new type of MSHBs that use layered sodium vanadate((Na,Mn)V_(8)O_(20)·5H_(2)O,Mn-NVO)cathodes coupled with an organic 3,4,9,10-perylenetetracarboxylic diimide(PTCDI)anode in Mg^(2+)/Na^(+)hybrid electrolytes.During electrochemical cycling,Mg^(2+)and Na^(+)co-participate in the cathode reactions,and the introduction of Na^(+)promotes the structural stability of the Mn-NVO cathode,as cleared by several ex-situ characterizations.Consequently,the Mn-NVO cathode presents great specific capacity(249.9 mA h g^(−1)at 300 mA g^(−1))and cycling(1500 cycles at 1500 mA g^(−1))in the Mg^(2+)/Na^(+)hybrid electrolytes.Besides,full battery displays long lifespan with 10,000 cycles at 1000 mA g^(−1).The rate performance and cycling stability of MSHBs have been improved by an economical and scalable method,and the mechanism for these improvements is discussed.展开更多
本文以肉桂酸甲酯、水合肼及水杨醛为原料,设计合成了一种“turn-on”型离子选择性荧光探针,采用NMR、IR及HRMS对其结构进行了表征,结果表明该探针为N'-[(2-羟苯基)亚甲基]-3-{2-[(2-羟苯基)亚甲基]肼-1-基}-3-苯丙酰肼(ZL)。基于...本文以肉桂酸甲酯、水合肼及水杨醛为原料,设计合成了一种“turn-on”型离子选择性荧光探针,采用NMR、IR及HRMS对其结构进行了表征,结果表明该探针为N'-[(2-羟苯基)亚甲基]-3-{2-[(2-羟苯基)亚甲基]肼-1-基}-3-苯丙酰肼(ZL)。基于其存在的酰基和邻羟苯基亚甲基胺结构,研究了其对不同金属离子的识别作用,结果Zn^(2+)、Mg^(2+)和Cd^(2+)对探针ZL荧光表现出“turn-on”效应,其荧光分别增强了47、21、24倍,而其他金属离子对其荧光光谱及强度无影响,化合物ZL表现出对Zn^(2+)、Mg^(2+)和Cd^(2+)的高选择性识别和高灵敏检测,其检出限分别为5.5nmol·L^(-1)、8.4nmol·L^(-1)、9.9 nmol·L^(-1)。通过Job s plot实验表明ZL与Zn^(2+)、Mg^(2+)和Cd^(2+)的结合比为1∶1,结合核磁滴定及Gaussian计算结果,可推测Zn^(2+)和Cd^(2+)与ZL的酚羟基结合;Mg^(2+)与ZL中的酚羟基、羰基氧及席夫碱的氮原子结合。本文设计的荧光探针ZL可望实现对Zn^(2+)、Mg^(2+)、Cd^(2+)的快速高灵敏检测,在生物以及环境样本的监测中具有较好的应用前景。展开更多
基金financially supported by the National Natural Science Foundation of China(NSFC)(52203261)Natural Science Foundation of Jiangsu Province(BK20210474)the project of research on the industrial application of"controllable synthesis of nanocarbon-based polymer composites and their application in new energy”(N0.CJGJZD20210408092400002).
文摘The poor reversibility of Zn anodes induced by dendrite growth,surface passivation,and corrosion,severely hinders the practical applicability of Zn metal batteries.To address these issues,a plasmaassisted aerogel(PAG)interface engineering was proposed as efficient ion transport modulator that can simultaneously regulate uniform Zn^(2+)flux and desolvation behavior during battery operation.The PAG with ordered mesopores acted as an ion sieve to homogenize Zn deposition and accelerate Zn^(2+)flux,which is favorable for corrosion resistance and dendrite suppression.Importantly,the plasma-assisted aerogel with abundant hydrophilic groups can facilitate the desolvation kinetics of Zn^(2+)due to the multiple hydrogen-bonding interaction with the activated water molecules,thus accelerating the Zn^(2+)migration kinetics.Consequently,the Zn/Zn cell assembled with PAG-modified separator demonstrates stable plating and stripping behavior(over 1400 h at 1 mA cm^(-2))and high Coulombic efficiency(99.8%at1 mA cm^(-2)after 1100 cycles),and the Zn‖MnO_(2)full cell shows excellent long-term cycling stability and maintains a high capacity of 154.9 mA h g^(-1)after 1000 cycles at 1 A g^(-1).This study provides a feasible approach for the large-scale fabrication of aerogel functionalized separators to realize ultra-stable Zn metal batteries.
基金the financial support from the National Natural Science Foundation of China, China (22005207, 52261160384)the Guangdong Basic and Applied Basic Research Foundation, Guangdong Province, China (2019A1515011819)+2 种基金the Outstanding Youth Basic Research Project of Shenzhen, Shenzhen, China (RCYX20221008092934093)the Joint Funds of the National Natural Science Foundation of China, China (U22A20140)the Science and Technology Development Fund, Macao SAR (0090/2021/A2 and 0049/2021/AGJ)
文摘Magnesium ion batteries(MIBs)are a potential field for the energy storage of the future but are restricted by insufficient rate capability and rapid capacity degradation.Magnesium-sodium hybrid ion batteries(MSHBs)are an effective way to address these problems.Here,we report a new type of MSHBs that use layered sodium vanadate((Na,Mn)V_(8)O_(20)·5H_(2)O,Mn-NVO)cathodes coupled with an organic 3,4,9,10-perylenetetracarboxylic diimide(PTCDI)anode in Mg^(2+)/Na^(+)hybrid electrolytes.During electrochemical cycling,Mg^(2+)and Na^(+)co-participate in the cathode reactions,and the introduction of Na^(+)promotes the structural stability of the Mn-NVO cathode,as cleared by several ex-situ characterizations.Consequently,the Mn-NVO cathode presents great specific capacity(249.9 mA h g^(−1)at 300 mA g^(−1))and cycling(1500 cycles at 1500 mA g^(−1))in the Mg^(2+)/Na^(+)hybrid electrolytes.Besides,full battery displays long lifespan with 10,000 cycles at 1000 mA g^(−1).The rate performance and cycling stability of MSHBs have been improved by an economical and scalable method,and the mechanism for these improvements is discussed.
文摘本文以肉桂酸甲酯、水合肼及水杨醛为原料,设计合成了一种“turn-on”型离子选择性荧光探针,采用NMR、IR及HRMS对其结构进行了表征,结果表明该探针为N'-[(2-羟苯基)亚甲基]-3-{2-[(2-羟苯基)亚甲基]肼-1-基}-3-苯丙酰肼(ZL)。基于其存在的酰基和邻羟苯基亚甲基胺结构,研究了其对不同金属离子的识别作用,结果Zn^(2+)、Mg^(2+)和Cd^(2+)对探针ZL荧光表现出“turn-on”效应,其荧光分别增强了47、21、24倍,而其他金属离子对其荧光光谱及强度无影响,化合物ZL表现出对Zn^(2+)、Mg^(2+)和Cd^(2+)的高选择性识别和高灵敏检测,其检出限分别为5.5nmol·L^(-1)、8.4nmol·L^(-1)、9.9 nmol·L^(-1)。通过Job s plot实验表明ZL与Zn^(2+)、Mg^(2+)和Cd^(2+)的结合比为1∶1,结合核磁滴定及Gaussian计算结果,可推测Zn^(2+)和Cd^(2+)与ZL的酚羟基结合;Mg^(2+)与ZL中的酚羟基、羰基氧及席夫碱的氮原子结合。本文设计的荧光探针ZL可望实现对Zn^(2+)、Mg^(2+)、Cd^(2+)的快速高灵敏检测,在生物以及环境样本的监测中具有较好的应用前景。