采用碳酸盐共沉淀法通过调节NH_3·H_2O用量来实现可控制备超高倍率纳米结构LiNi_(1/3)Co_(1/3)Mn_(1/3)O_2正极材料。NH_3·H_2O用量会对颗粒的形貌、粒径、晶体结构以及材料电化学性能产生较大的影响。X射线衍射(XRD)分析和...采用碳酸盐共沉淀法通过调节NH_3·H_2O用量来实现可控制备超高倍率纳米结构LiNi_(1/3)Co_(1/3)Mn_(1/3)O_2正极材料。NH_3·H_2O用量会对颗粒的形貌、粒径、晶体结构以及材料电化学性能产生较大的影响。X射线衍射(XRD)分析和扫描电镜(SEM)结果表明,随着NH_3·H_2O用量的降低,一次颗粒形貌由纳米片状逐渐过渡到纳米球状,且nNH_3·H_2O∶(nNi+nCo+nMn)=1∶2样品晶体层状结构最完善、Li^+/Ni^(2+)阳离子混排程度最低。电化学性能测试结果也证实了nNH_3·H_2O∶(nNi+nCo+nMn)=1∶2样品具有最优异的循环稳定性和超高倍率性能。具体而言,在2.7~4.3 V,1C下循环300次后的放电比容量为119 m Ah·g^(-1),容量保持率为81%,中值电压基本无衰减(保持率为97%)。在100C(18 Ah·g^(-1))的超高倍率下,放电比容量还能达到56 m Ah·g^(-1),具有应用于高功率型锂离子电池的前景。此NH_3·H_2O比例值对于共沉淀法制备其他高倍率、高容量的正/负极氧化物材料具有一定的工艺参考价值。展开更多
采用原位诱导法制备得到了一系列x Li M_2O_4?(1-x)Li Ni_(1/3)Co_(1/3)Mn_(1/3)O_2(M=Ni,Co,Mn;x=0,0.1,0.2,0.3,0.4,0.5)尖晶石/层状异质结构复合材料。借助X射线衍射、扫描电镜、差示扫描量热仪、恒电流间歇滴定技术和恒电流充放电...采用原位诱导法制备得到了一系列x Li M_2O_4?(1-x)Li Ni_(1/3)Co_(1/3)Mn_(1/3)O_2(M=Ni,Co,Mn;x=0,0.1,0.2,0.3,0.4,0.5)尖晶石/层状异质结构复合材料。借助X射线衍射、扫描电镜、差示扫描量热仪、恒电流间歇滴定技术和恒电流充放电测试表征手段对材料的晶体结构、微观形貌和电化学性能进行了研究。电化学性能结果表明:x=0.2材料的倍率性能和循环性能最佳,在2.7~4.3 V、1C下循环100次后,放电比容量为137 m A?h/g,容量保持率为93%;10C时的放电比容量为112 m A?h/g,相比于原始Li Ni_(1/3)Co_(1/3)Mn_(1/3)O_2材料在10C的放电比容量(95 m A?h/g)有较大提高。此外,快充慢放能力测试也证实了该材料的结构稳定,其在5C充、1C放的充放电机制下,循环100次后的放电比容量还能高达120 m A?h/g,容量保持率为87%。恒电流间歇滴定技术(GITT)的结果表明。x=0.2材料的D_(Li+)值比原始Li Ni_(1/3)Co_(1/3)Mn_(1/3)O_2材料的要高出一个数量级,说明尖晶石相的引入从根本上改善了材料的电化学性能。展开更多
Industrial NH3 production mainly employs the well‐known Haber‐Bosch(H‐B)process,which is associated with significant energy consumption and carbon emissions.Photoelectrochemical nitro‐gen reduction reaction(PEC‐N...Industrial NH3 production mainly employs the well‐known Haber‐Bosch(H‐B)process,which is associated with significant energy consumption and carbon emissions.Photoelectrochemical nitro‐gen reduction reaction(PEC‐NRR)under ambient conditions is considered a promising alternative to the H‐B process and has been attracting increasing attention owing to its associated energy effi‐ciency and environmentally friendly characteristics.The performance of a PEC‐NRR system,such as the NH_(3) yield,selectivity,and stability,is essentially determined by its key component,the photo‐cathode.In this review,the latest progress in the development of photocathode materials employed in PEC‐NRR is evaluated.The fundamental mechanisms and essential features required for the PEC‐NRR are introduced,followed by a discussion of various types of photocathode materials,such as oxides,sulfides,selenides,black silicon,and black phosphorus.In particular,the PEC‐NRR reac‐tion mechanisms associated with these photocathode materials are reviewed in detail.Finally,the present challenges and future opportunities related to the further development of PEC‐NRR are also discussed.This review aims to improve the understanding of PEC‐NRR photocathode materials while also shedding light on the new concepts and significant innovations in this field.展开更多
文摘采用碳酸盐共沉淀法通过调节NH_3·H_2O用量来实现可控制备超高倍率纳米结构LiNi_(1/3)Co_(1/3)Mn_(1/3)O_2正极材料。NH_3·H_2O用量会对颗粒的形貌、粒径、晶体结构以及材料电化学性能产生较大的影响。X射线衍射(XRD)分析和扫描电镜(SEM)结果表明,随着NH_3·H_2O用量的降低,一次颗粒形貌由纳米片状逐渐过渡到纳米球状,且nNH_3·H_2O∶(nNi+nCo+nMn)=1∶2样品晶体层状结构最完善、Li^+/Ni^(2+)阳离子混排程度最低。电化学性能测试结果也证实了nNH_3·H_2O∶(nNi+nCo+nMn)=1∶2样品具有最优异的循环稳定性和超高倍率性能。具体而言,在2.7~4.3 V,1C下循环300次后的放电比容量为119 m Ah·g^(-1),容量保持率为81%,中值电压基本无衰减(保持率为97%)。在100C(18 Ah·g^(-1))的超高倍率下,放电比容量还能达到56 m Ah·g^(-1),具有应用于高功率型锂离子电池的前景。此NH_3·H_2O比例值对于共沉淀法制备其他高倍率、高容量的正/负极氧化物材料具有一定的工艺参考价值。
文摘采用原位诱导法制备得到了一系列x Li M_2O_4?(1-x)Li Ni_(1/3)Co_(1/3)Mn_(1/3)O_2(M=Ni,Co,Mn;x=0,0.1,0.2,0.3,0.4,0.5)尖晶石/层状异质结构复合材料。借助X射线衍射、扫描电镜、差示扫描量热仪、恒电流间歇滴定技术和恒电流充放电测试表征手段对材料的晶体结构、微观形貌和电化学性能进行了研究。电化学性能结果表明:x=0.2材料的倍率性能和循环性能最佳,在2.7~4.3 V、1C下循环100次后,放电比容量为137 m A?h/g,容量保持率为93%;10C时的放电比容量为112 m A?h/g,相比于原始Li Ni_(1/3)Co_(1/3)Mn_(1/3)O_2材料在10C的放电比容量(95 m A?h/g)有较大提高。此外,快充慢放能力测试也证实了该材料的结构稳定,其在5C充、1C放的充放电机制下,循环100次后的放电比容量还能高达120 m A?h/g,容量保持率为87%。恒电流间歇滴定技术(GITT)的结果表明。x=0.2材料的D_(Li+)值比原始Li Ni_(1/3)Co_(1/3)Mn_(1/3)O_2材料的要高出一个数量级,说明尖晶石相的引入从根本上改善了材料的电化学性能。
文摘采用脉冲激光沉积技术(pulsed laser deposition,PLD),在Pt/Ti/SiO_2/Si基片上制备了La_(0.1)Bi_(0.9)FeO_3(BFO),Bi_(0.5)(Na_(0.85)K_(0.15))0.5TiO_3(BNKT)和BFO/BNKT纳米复合薄膜。结果表明,复合薄膜的铁电特性比单层的BFO、BNKT薄膜有所增强。利用压电力显微镜(piezoresponse force microscopy,PFM)观察到了铁电畴。由于畴结构内部矫顽力分布不均匀,导致极化反转随时间改变,疲劳测试结果也证实了该结论。随着转换周期的增加,极化随之增强。运用PFM测量了纳米级的压电响应,同样证实了BFO/BNKT复合薄膜中的畴反转现象。
文摘Industrial NH3 production mainly employs the well‐known Haber‐Bosch(H‐B)process,which is associated with significant energy consumption and carbon emissions.Photoelectrochemical nitro‐gen reduction reaction(PEC‐NRR)under ambient conditions is considered a promising alternative to the H‐B process and has been attracting increasing attention owing to its associated energy effi‐ciency and environmentally friendly characteristics.The performance of a PEC‐NRR system,such as the NH_(3) yield,selectivity,and stability,is essentially determined by its key component,the photo‐cathode.In this review,the latest progress in the development of photocathode materials employed in PEC‐NRR is evaluated.The fundamental mechanisms and essential features required for the PEC‐NRR are introduced,followed by a discussion of various types of photocathode materials,such as oxides,sulfides,selenides,black silicon,and black phosphorus.In particular,the PEC‐NRR reac‐tion mechanisms associated with these photocathode materials are reviewed in detail.Finally,the present challenges and future opportunities related to the further development of PEC‐NRR are also discussed.This review aims to improve the understanding of PEC‐NRR photocathode materials while also shedding light on the new concepts and significant innovations in this field.
基金supported by Australian Research Council(ARC)(LP120200432 and DP140104062)Baosteel-Australia joint research and development center(Baosteel Grant no.BA14006)the Commonwealth of Australia through the Automotive Australia 2020 Coope rative Research Centre(Auto CRC)