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فرشاد بوربور اژدری

فرشاد بوربور اژدری

استادیار

دانشکده: دانشکده شیمی

گروه: شیمی فیزیک

مقطع تحصیلی: دکترای تخصصی

سال تولد: ۱۳۶۸

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فرشاد بوربور اژدری

استادیار فرشاد بوربور اژدری

دانشکده: دانشکده شیمی - گروه: شیمی فیزیک مقطع تحصیلی: دکترای تخصصی | سال تولد: ۱۳۶۸ |

 

  • Our research group's research activities focus on developing Carbon-based Materials, Nano Materials, Ionic Liquids, Conductive Polymers, Metal-Organic Frameworks (MOFs), Mxene (2D materials), and their use in various applications such as batteries, supercapacitors, and similar activities.
  • All the students interested in working with our group on developing Li-ion Batteries, Li-air Batteries (LIBs), Li-CO2 Batteries, and Lithium-Sulfur (Li-S Batteries) do your research we sincerely welcome.

 

  • فعالیت های پژوهشی گروه تحقیقاتی ما، به صورت متمرکز، بر روی توسعه مواد کربنی (Carbon-based Materials)، نانومواد (Nano Materials)، مایعات یونی (Ionic Liquids)، پلیمرهای هادی (Conductive Polymers)، مواد آلی-چارچوب فلزی (Metal Organic Frameworks)، مواد دو بعدی Mxene و به کار گیری آنها در کاربردهای مختلف از جمله باتری ها (Batteries)، ابرخازن ها (Supercapacitors) و فعالیت های مشابه است.

 

  • از همه دانشجویانی که تمایل دارند که با گروه ما بر روی توسعه باتری های لیتویم-یون (Li-ion Batteries)، لیتویم-هوا (Li-air Batteries)، لیتیوم-کربن دی اکسید (Li-CO2 Batteries) و لیتیوم-سولفور (Li-S Batteries) تحقیق و پژوهش کنند، صمیمانه استقبال می کنیم. 

 

 

 

My affiliation

Department of Applied Chemistry, Faculty of Chemistry, University of Kashan, Kashan, Iran

نمایش بیشتر

Unveiling the practical impact of cyclic additive- ethyl-4-toluene sulfonate on stable interface and extended lifespan using a combination of theory and experiments in full cell LIBs

نویسندگانFarshad Boorboor Ajdari* , Fereshteh Abbasi, Ganesh Kamath* , Abolfazl Fathollahi Zonouz, Mehdi Shakourian-Fard, Sajad Zargan, Mahshid Ershadi,f
نشریهElectrochimica Acta
كد DOI/DORhttps://doi.org/10.1016/j.electacta.2024.145452
شماره صفحات145452
شماره مجلد512
ضریب تاثیر (IF)5.5
نوع مقالهFull Paper
تاریخ انتشار2024-12-01
رتبه نشریهعلمی - پژوهشی
نوع نشریهالکترونیکی
کشور محل چاپایران
نمایه نشریهJCR ,SCOPUS

چکیده مقاله

Additives play a pivotal role in enhancing lithium-ion battery performance, safety, and lifespan by mitigating electrolyte degradation, improving ion transport, and stabilizing the SEI layer to address issues of thermal instability and dendritic growth. This study evaluates Ethyl-4-toluene sulfonate (ETS) as a promising cyclic additive for improving lithium-ion battery efficiency and longevity. Through a combination of theoretical and experimental analyses, we assessed the stability and electrochemical properties of SEI layers with ETS integration. Our results show that ETS strongly interacts with electrode surfaces, fostering stable SEI formation and substantially reducing electrolyte oxidation. Highest occupied molecular orbital (HOMO) and lowest unoccupied molecular orbital (LUMO) energy analyses indicate that ETS oxidizes prior to carbonate solvents, contributing to enhanced structural integrity. Adsorption energy calculations further reveal that ETS adheres to electrode surfaces more effectively than traditional electrolytes, reinforcing SEI stability. Experimental evaluations using FT-IR, XRD, and Rietveld refinement characterized electrode structure changes pre- and post-cycling. Testing electrolytes composed of ethylene carbonate (EC), dimethyl carbonate (DMC), and LiPF6 with varied ETS concentrations, we found that the sample with 0.7 % ETS exhibited optimal stability, achieving a high capacity of 1609.559 mAh.g⁻¹ over 400 cycles. SEM and impedance measurements confirmed substantial improvements in electrode structure and reduced resistance. The ETS-free electrolyte retained only 74.08 % capacity after 400 cycles and failed after 610 cycles, whereas the 0.7 % ETS sample maintained 90.55 % capacity and lasted approximately 920 cycles. These findings underscore the potential of ETS to enhance SEI formation, prevent electrolyte degradation, and improve battery performance, positioning ETS as a valuable additive for advanced lithium-ion batteries.

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