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Layered Transition Metal Sulfides for Supercapacitor Applications
by
Öztürk, Ozan
, Gür, Emre
in
Conducting polymers
/ Electrochemical performance
/ Lithium-ion batteries
/ Metal sulfides
/ Molybdenum disulfide
/ MoS2
/ Supercapacitors
/ Transition metal compounds
/ Transition metal oxides
/ Transition metal sulfides
/ VS2
2024
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Layered Transition Metal Sulfides for Supercapacitor Applications
by
Öztürk, Ozan
, Gür, Emre
in
Conducting polymers
/ Electrochemical performance
/ Lithium-ion batteries
/ Metal sulfides
/ Molybdenum disulfide
/ MoS2
/ Supercapacitors
/ Transition metal compounds
/ Transition metal oxides
/ Transition metal sulfides
/ VS2
2024
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Do you wish to request the book?
Layered Transition Metal Sulfides for Supercapacitor Applications
by
Öztürk, Ozan
, Gür, Emre
in
Conducting polymers
/ Electrochemical performance
/ Lithium-ion batteries
/ Metal sulfides
/ Molybdenum disulfide
/ MoS2
/ Supercapacitors
/ Transition metal compounds
/ Transition metal oxides
/ Transition metal sulfides
/ VS2
2024
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Layered Transition Metal Sulfides for Supercapacitor Applications
Journal Article
Layered Transition Metal Sulfides for Supercapacitor Applications
2024
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Overview
Supercapacitor (SC) devices holds an important position between traditional capacitors and ion batteries in terms of energy density and power density values. In particular, SC′s greater power density values than Li‐ion batteries make them useful for some specific applications, such as storing energy in hybrid cars while the car slows down. Increasing energy density values is one of the key challenges for the SC community. Transition metal dichalcogenides (TMDCs), are one of the new developing important material systems to have this potential, compared to their counterparts’ transition metal oxides and conductive polymers. This review is about giving insight into the electrochemical performances of two‐dimensional (2D) layered transition metal sulfides (TMS) such as MoS2, WS2, TaS2, NbS2, VS2, TiS2 and ZrS2 materials. On the other hand, the methods mostly used in synthesizing these materials are presented. TMS materials have potentials to be a good candidate for supercapacitor devices because of their layered structures (more space for charges to accumulate), having metallic phases (good conductivity), multiple oxidation steps (large specific capacitance). The current review summarizes the six different synthesis methods, electrochemical performances and some future perspectives.
Publisher
John Wiley & Sons, Inc,Wiley-VCH
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