The development of high-energy-density Li-ion batteries is hindered by the irreversible capacity loss during the initial charge-discharge process.Therefore,pre-lithiation technology has emerged in the past few decades...The development of high-energy-density Li-ion batteries is hindered by the irreversible capacity loss during the initial charge-discharge process.Therefore,pre-lithiation technology has emerged in the past few decades as a powerful method to supplement the undesired lithium loss,thereby maximizing the energy utilization of LIBs and extending their cycle life.Lithium oxalate(Li_(2)C_(2)O_(4)),with a high lithium content and excellent air stability,has been considered one of the most promising materials for lithium compensation.However,the sluggish electrochemical decomposition kinetics of the material severely hinders its further commercial application.Here,we introduce a recrystallization strategy combined with atomic Ni catalysts to modulate the mass transport and decomposition reaction kinetics.The decomposition potential of Li_(2)C_(2)O_(4)is significantly decreased from~4.90V to~4.30V with a high compatibility with the current battery systems.In compared to the bare NCM//Li cell,the Ni/N-rGO and Li_(2)C_(2)O_(4)composite(Ni-LCO)modified cell releases an extra capacity of~11.7%.Moreover,this ratio can be magnified in the NCM//SiOx full cell,resulting in a 30.4%higher reversible capacity.Overall,this work brings the catalytic paradigm into the pre-lithiation technology,which opens another window for the development of high-energy-density battery systems.展开更多
通过还原法制备了Cu_(2)O/还原氧化石墨烯(Cu_(2)O/rGO)复合材料,采用SEM、FTIR、EDS、XRD、XPS、氮气吸附-脱附、循环伏安曲线对其结构和氧还原性能进行了表征和测试。将Cu_(2)O/rGO复合材料负载于碳布制得了Cu_(2)O/rGO阴极,以硝酸盐...通过还原法制备了Cu_(2)O/还原氧化石墨烯(Cu_(2)O/rGO)复合材料,采用SEM、FTIR、EDS、XRD、XPS、氮气吸附-脱附、循环伏安曲线对其结构和氧还原性能进行了表征和测试。将Cu_(2)O/rGO复合材料负载于碳布制得了Cu_(2)O/rGO阴极,以硝酸盐作为模型污染物,将其作为微生物燃料电池(MFC)的阴极,探究其对MFC产电脱氮性能和微生物菌落结构的影响。结果表明,Cu_(2)O/rGO复合材料具有大量的介孔结构和良好的氧还原可逆性。与Pt/C阴极相比,Cu_(2)O/rGO阴极的交换电流密度升高了47.77%,电荷转移阻抗降低了65.53%。Cu_(2)O/rGO-MFC在处理NO_(3)^(–)-N废水时平均最大输出电压为662.54 m V、最大功率密度为26.27 m W/cm^(2)、平均库仑效率为32.02%、NO_(3)^(–)-N去除速率为83.33 mg/(L·h),均高于Pt/C-MFC[485.33 m V、16.98 m W/cm^(2)、7.38%、41.67 mg/(L·h)]。Cu_(2)O/rGO-MFC阴极生物膜中反硝化关键酶活性和胞外聚合物含量增加,同时,功能性微生物Betaproteobacteria和Alphaproteobacteria纲的丰度分别较Pt/C-MFC增加了35.66%和36.96%。展开更多
基金supported by National Natural Science Foundation of China(Grant No.52002094)Guangdong Basic and Applied Basic Research Foundation(Grant No.2019A1515110756)+2 种基金Shenzhen Science and Technology Program(Grant No.JCYJ20210324121411031,JSGG202108021253804014,RCBS20210706092218040)the Shenzhen Steady Support Plan(GXWD20221030205923001,GXWD20201230155427003-20200824103000001)School Research Startup Expenses of Harbin Institute of Technology(Shenzhen)(Grant No.DD29100027,DD45001022).
文摘The development of high-energy-density Li-ion batteries is hindered by the irreversible capacity loss during the initial charge-discharge process.Therefore,pre-lithiation technology has emerged in the past few decades as a powerful method to supplement the undesired lithium loss,thereby maximizing the energy utilization of LIBs and extending their cycle life.Lithium oxalate(Li_(2)C_(2)O_(4)),with a high lithium content and excellent air stability,has been considered one of the most promising materials for lithium compensation.However,the sluggish electrochemical decomposition kinetics of the material severely hinders its further commercial application.Here,we introduce a recrystallization strategy combined with atomic Ni catalysts to modulate the mass transport and decomposition reaction kinetics.The decomposition potential of Li_(2)C_(2)O_(4)is significantly decreased from~4.90V to~4.30V with a high compatibility with the current battery systems.In compared to the bare NCM//Li cell,the Ni/N-rGO and Li_(2)C_(2)O_(4)composite(Ni-LCO)modified cell releases an extra capacity of~11.7%.Moreover,this ratio can be magnified in the NCM//SiOx full cell,resulting in a 30.4%higher reversible capacity.Overall,this work brings the catalytic paradigm into the pre-lithiation technology,which opens another window for the development of high-energy-density battery systems.
文摘通过还原法制备了Cu_(2)O/还原氧化石墨烯(Cu_(2)O/rGO)复合材料,采用SEM、FTIR、EDS、XRD、XPS、氮气吸附-脱附、循环伏安曲线对其结构和氧还原性能进行了表征和测试。将Cu_(2)O/rGO复合材料负载于碳布制得了Cu_(2)O/rGO阴极,以硝酸盐作为模型污染物,将其作为微生物燃料电池(MFC)的阴极,探究其对MFC产电脱氮性能和微生物菌落结构的影响。结果表明,Cu_(2)O/rGO复合材料具有大量的介孔结构和良好的氧还原可逆性。与Pt/C阴极相比,Cu_(2)O/rGO阴极的交换电流密度升高了47.77%,电荷转移阻抗降低了65.53%。Cu_(2)O/rGO-MFC在处理NO_(3)^(–)-N废水时平均最大输出电压为662.54 m V、最大功率密度为26.27 m W/cm^(2)、平均库仑效率为32.02%、NO_(3)^(–)-N去除速率为83.33 mg/(L·h),均高于Pt/C-MFC[485.33 m V、16.98 m W/cm^(2)、7.38%、41.67 mg/(L·h)]。Cu_(2)O/rGO-MFC阴极生物膜中反硝化关键酶活性和胞外聚合物含量增加,同时,功能性微生物Betaproteobacteria和Alphaproteobacteria纲的丰度分别较Pt/C-MFC增加了35.66%和36.96%。