Nano and Battery Anode: A Review
Abstract Improving the anode properties, including increasing its capacity, is one of the basic necessities to improve battery performance. In this paper, high-capacity anodes with alloy performance are introduced, then the problem of fragmentation of these anodes and its effect during the cyclic li...
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Format: | Article |
Language: | English |
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SpringerOpen
2021-12-01
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Series: | Nanoscale Research Letters |
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Online Access: | https://doi.org/10.1186/s11671-021-03631-x |
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author | Hasan Sh. Majdi Zagir Azgarovich Latipov Vitaliy Borisov Nedorezova Olga Yuryevna Mustafa M. Kadhim Wanich Suksatan Ibrahim Hammoud Khlewee Ehsan Kianfar |
author_facet | Hasan Sh. Majdi Zagir Azgarovich Latipov Vitaliy Borisov Nedorezova Olga Yuryevna Mustafa M. Kadhim Wanich Suksatan Ibrahim Hammoud Khlewee Ehsan Kianfar |
author_sort | Hasan Sh. Majdi |
collection | DOAJ |
description | Abstract Improving the anode properties, including increasing its capacity, is one of the basic necessities to improve battery performance. In this paper, high-capacity anodes with alloy performance are introduced, then the problem of fragmentation of these anodes and its effect during the cyclic life is stated. Then, the effect of reducing the size to the nanoscale in solving the problem of fragmentation and improving the properties is discussed, and finally the various forms of nanomaterials are examined. In this paper, electrode reduction in the anode, which is a nanoscale phenomenon, is described. The negative effects of this phenomenon on alloy anodes are expressed and how to eliminate these negative effects by preparing suitable nanostructures will be discussed. Also, the anodes of the titanium oxide family are introduced and the effects of Nano on the performance improvement of these anodes are expressed, and finally, the quasi-capacitive behavior, which is specific to Nano, will be introduced. Finally, the third type of anodes, exchange anodes, is introduced and their function is expressed. The effect of Nano on the reversibility of these anodes is mentioned. The advantages of nanotechnology for these electrodes are described. In this paper, it is found that nanotechnology, in addition to the common effects such as reducing the penetration distance and modulating the stress, also creates other interesting effects in this type of anode, such as capacitive quasi-capacitance, changing storage mechanism and lower volume change. |
first_indexed | 2024-03-12T10:17:25Z |
format | Article |
id | doaj.art-22deaadbc633486998ae5bc67b29db47 |
institution | Directory Open Access Journal |
issn | 1556-276X |
language | English |
last_indexed | 2024-03-12T10:17:25Z |
publishDate | 2021-12-01 |
publisher | SpringerOpen |
record_format | Article |
series | Nanoscale Research Letters |
spelling | doaj.art-22deaadbc633486998ae5bc67b29db472023-09-02T10:22:32ZengSpringerOpenNanoscale Research Letters1556-276X2021-12-0116112610.1186/s11671-021-03631-xNano and Battery Anode: A ReviewHasan Sh. Majdi0Zagir Azgarovich Latipov1Vitaliy Borisov2Nedorezova Olga Yuryevna3Mustafa M. Kadhim4Wanich Suksatan5Ibrahim Hammoud Khlewee6Ehsan Kianfar7Department of Chemical Engineering and Petroleum Industries, Al-Mustaqbal University CollegeElabuga Institute of KFU, Kazan Federal UniversitySechenov First Moscow State Medical UniversityDepartment of Legal and Social Sciences, Naberezhnye Chelny Institute, Kazan Federal UniversityDepartment of Dentistry, Kut University CollegeFaculty of Nursing, HRH Princess Chulabhorn College of Medical Science, Chulabhorn Royal AcademyDepartment of Prosthodontics, College of Health and Medical Technololgy, Al-Ayen UniversityDepartment of Chemical Engineering, Arak Branch, Islamic Azad UniversityAbstract Improving the anode properties, including increasing its capacity, is one of the basic necessities to improve battery performance. In this paper, high-capacity anodes with alloy performance are introduced, then the problem of fragmentation of these anodes and its effect during the cyclic life is stated. Then, the effect of reducing the size to the nanoscale in solving the problem of fragmentation and improving the properties is discussed, and finally the various forms of nanomaterials are examined. In this paper, electrode reduction in the anode, which is a nanoscale phenomenon, is described. The negative effects of this phenomenon on alloy anodes are expressed and how to eliminate these negative effects by preparing suitable nanostructures will be discussed. Also, the anodes of the titanium oxide family are introduced and the effects of Nano on the performance improvement of these anodes are expressed, and finally, the quasi-capacitive behavior, which is specific to Nano, will be introduced. Finally, the third type of anodes, exchange anodes, is introduced and their function is expressed. The effect of Nano on the reversibility of these anodes is mentioned. The advantages of nanotechnology for these electrodes are described. In this paper, it is found that nanotechnology, in addition to the common effects such as reducing the penetration distance and modulating the stress, also creates other interesting effects in this type of anode, such as capacitive quasi-capacitance, changing storage mechanism and lower volume change.https://doi.org/10.1186/s11671-021-03631-xBattery anodeHigh-capacity anodesChanging storage mechanismCapacitive quasi-capacitanceTitanium oxide |
spellingShingle | Hasan Sh. Majdi Zagir Azgarovich Latipov Vitaliy Borisov Nedorezova Olga Yuryevna Mustafa M. Kadhim Wanich Suksatan Ibrahim Hammoud Khlewee Ehsan Kianfar Nano and Battery Anode: A Review Nanoscale Research Letters Battery anode High-capacity anodes Changing storage mechanism Capacitive quasi-capacitance Titanium oxide |
title | Nano and Battery Anode: A Review |
title_full | Nano and Battery Anode: A Review |
title_fullStr | Nano and Battery Anode: A Review |
title_full_unstemmed | Nano and Battery Anode: A Review |
title_short | Nano and Battery Anode: A Review |
title_sort | nano and battery anode a review |
topic | Battery anode High-capacity anodes Changing storage mechanism Capacitive quasi-capacitance Titanium oxide |
url | https://doi.org/10.1186/s11671-021-03631-x |
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