{"title":"超越电双层效应动态极限的高频超级电容器","authors":"Zhangshanhao Li, Minghao Xu, Yier Xia, Ziyun Yan, Jianyou Dai, Bingmeng Hu, Haizhao Feng, Sixing Xu, Xiaohong Wang","doi":"10.1038/s41467-025-59015-7","DOIUrl":null,"url":null,"abstract":"<p>The prosperity of microelectronics has intensified the requirement for miniaturized power systems using capacitors with high capacity and broad frequency ranges. Electrochemical supercapacitors stand out with their superior capacitance density, surpassing traditional electrolytic capacitors by at least two orders of magnitude. However, the intrinsic slow ion dynamics of electrical double layer effects greatly limit supercapacitors characteristic frequency, constraining their applicability in microsystems. This work constructs a near-ideal micro electrochemical supercapacitor, featuring the monolayer graphene as a working electrode, to reveal the ceiling of electrochemical capacitance characteristic frequency. To address this limitation, we introduce a Hybrid Electrochemical Electrolytic Capacitor design, which asymmetrically coupling the electrochemical and dielectric effects. At low frequencies, the electrochemical segment provides sufficient capacity, while its electrolytic segment takes over at high frequencies, broadening the frequency range. Consequently, the hybrid design boasts considerable capacitance density across a broad frequency range. Employing our wafer-scale microfabrication techniques, we showcase a device, achieving a characteristic frequency of 44 kHz and a volume capacitance density of 800 <span>\\({{\\rm{\\mu }}}{{\\rm{F}}}/{{{\\rm{cm}}}}^{3}\\)</span>. To demonstrate its practicality in microsystems, the device is integrated with a power management chip and buck circuit module, respectively, with only 2 % space usage compared to commercial electrolytic capacitor, achieving the same performance.</p>","PeriodicalId":19066,"journal":{"name":"Nature Communications","volume":"58 1","pages":""},"PeriodicalIF":15.7000,"publicationDate":"2025-04-18","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"High-frequency supercapacitors surpassing dynamic limit of electrical double layer effects\",\"authors\":\"Zhangshanhao Li, Minghao Xu, Yier Xia, Ziyun Yan, Jianyou Dai, Bingmeng Hu, Haizhao Feng, Sixing Xu, Xiaohong Wang\",\"doi\":\"10.1038/s41467-025-59015-7\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p>The prosperity of microelectronics has intensified the requirement for miniaturized power systems using capacitors with high capacity and broad frequency ranges. Electrochemical supercapacitors stand out with their superior capacitance density, surpassing traditional electrolytic capacitors by at least two orders of magnitude. However, the intrinsic slow ion dynamics of electrical double layer effects greatly limit supercapacitors characteristic frequency, constraining their applicability in microsystems. This work constructs a near-ideal micro electrochemical supercapacitor, featuring the monolayer graphene as a working electrode, to reveal the ceiling of electrochemical capacitance characteristic frequency. To address this limitation, we introduce a Hybrid Electrochemical Electrolytic Capacitor design, which asymmetrically coupling the electrochemical and dielectric effects. At low frequencies, the electrochemical segment provides sufficient capacity, while its electrolytic segment takes over at high frequencies, broadening the frequency range. Consequently, the hybrid design boasts considerable capacitance density across a broad frequency range. Employing our wafer-scale microfabrication techniques, we showcase a device, achieving a characteristic frequency of 44 kHz and a volume capacitance density of 800 <span>\\\\({{\\\\rm{\\\\mu }}}{{\\\\rm{F}}}/{{{\\\\rm{cm}}}}^{3}\\\\)</span>. To demonstrate its practicality in microsystems, the device is integrated with a power management chip and buck circuit module, respectively, with only 2 % space usage compared to commercial electrolytic capacitor, achieving the same performance.</p>\",\"PeriodicalId\":19066,\"journal\":{\"name\":\"Nature Communications\",\"volume\":\"58 1\",\"pages\":\"\"},\"PeriodicalIF\":15.7000,\"publicationDate\":\"2025-04-18\",\"publicationTypes\":\"Journal Article\",\"fieldsOfStudy\":null,\"isOpenAccess\":false,\"openAccessPdf\":\"\",\"citationCount\":\"0\",\"resultStr\":null,\"platform\":\"Semanticscholar\",\"paperid\":null,\"PeriodicalName\":\"Nature Communications\",\"FirstCategoryId\":\"103\",\"ListUrlMain\":\"https://doi.org/10.1038/s41467-025-59015-7\",\"RegionNum\":1,\"RegionCategory\":\"综合性期刊\",\"ArticlePicture\":[],\"TitleCN\":null,\"AbstractTextCN\":null,\"PMCID\":null,\"EPubDate\":\"\",\"PubModel\":\"\",\"JCR\":\"Q1\",\"JCRName\":\"MULTIDISCIPLINARY SCIENCES\",\"Score\":null,\"Total\":0}","platform":"Semanticscholar","paperid":null,"PeriodicalName":"Nature Communications","FirstCategoryId":"103","ListUrlMain":"https://doi.org/10.1038/s41467-025-59015-7","RegionNum":1,"RegionCategory":"综合性期刊","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q1","JCRName":"MULTIDISCIPLINARY SCIENCES","Score":null,"Total":0}
引用次数: 0
摘要
随着微电子技术的发展,人们对采用大容量、宽频率范围电容器的小型化电力系统提出了更高的要求。电化学超级电容器以其优越的电容密度脱颖而出,超过传统的电解电容器至少两个数量级。然而,电双层效应固有的慢离子动力学特性极大地限制了超级电容器的特性频率,限制了其在微系统中的应用。本文构建了一个以单层石墨烯为工作电极的接近理想的微型电化学超级电容器,揭示了电化学电容特征频率的上限。为了解决这一限制,我们引入了一种非对称耦合电化学和介电效应的混合电化学电解电容器设计。在低频时,电化学部分提供足够的容量,而其电解部分在高频时接管,拓宽了频率范围。因此,混合设计在宽频率范围内具有相当大的电容密度。利用我们的晶圆级微加工技术,我们展示了一个器件,实现了44 kHz的特征频率和800 \({{\rm{\mu }}}{{\rm{F}}}/{{{\rm{cm}}}}^{3}\)的体积电容密度。为了证明其在微系统中的实用性,该器件分别集成了电源管理芯片和降压电路模块,只有2个 % space usage compared to commercial electrolytic capacitor, achieving the same performance.
High-frequency supercapacitors surpassing dynamic limit of electrical double layer effects
The prosperity of microelectronics has intensified the requirement for miniaturized power systems using capacitors with high capacity and broad frequency ranges. Electrochemical supercapacitors stand out with their superior capacitance density, surpassing traditional electrolytic capacitors by at least two orders of magnitude. However, the intrinsic slow ion dynamics of electrical double layer effects greatly limit supercapacitors characteristic frequency, constraining their applicability in microsystems. This work constructs a near-ideal micro electrochemical supercapacitor, featuring the monolayer graphene as a working electrode, to reveal the ceiling of electrochemical capacitance characteristic frequency. To address this limitation, we introduce a Hybrid Electrochemical Electrolytic Capacitor design, which asymmetrically coupling the electrochemical and dielectric effects. At low frequencies, the electrochemical segment provides sufficient capacity, while its electrolytic segment takes over at high frequencies, broadening the frequency range. Consequently, the hybrid design boasts considerable capacitance density across a broad frequency range. Employing our wafer-scale microfabrication techniques, we showcase a device, achieving a characteristic frequency of 44 kHz and a volume capacitance density of 800 \({{\rm{\mu }}}{{\rm{F}}}/{{{\rm{cm}}}}^{3}\). To demonstrate its practicality in microsystems, the device is integrated with a power management chip and buck circuit module, respectively, with only 2 % space usage compared to commercial electrolytic capacitor, achieving the same performance.
期刊介绍:
Nature Communications, an open-access journal, publishes high-quality research spanning all areas of the natural sciences. Papers featured in the journal showcase significant advances relevant to specialists in each respective field. With a 2-year impact factor of 16.6 (2022) and a median time of 8 days from submission to the first editorial decision, Nature Communications is committed to rapid dissemination of research findings. As a multidisciplinary journal, it welcomes contributions from biological, health, physical, chemical, Earth, social, mathematical, applied, and engineering sciences, aiming to highlight important breakthroughs within each domain.