The Experts below are selected from a list of 141 Experts worldwide ranked by ideXlab platform
Yingying Zhang - One of the best experts on this subject based on the ideXlab platform.
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Superelastic Wire shaped supercapacitor sustaining 850 tensile strain based on carbon nanotube graphene fiber
Nano Research, 2018Co-Authors: Huimin Wang, Kailun Xia, Zhe Yin, Muqiang Jian, Mingchao Zhang, Chunya Wang, Xiaoping Liang, Qi Wang, Yingying ZhangAbstract:Stretchable and flexible supercapacitors are highly desired due to their many potential applications in wearable devices. However, it is challenging to fabricate supercapacitors that can withstand large tensile strain while maintaining high performance. Herein, we report an ultra-stretchable Wire-shaped supercapacitor based on carbon nanotube@graphene@MnO2 fibers wound around a Superelastic core fiber. The supercapacitor can sustain tensile strain up to 850%, which is the highest value reported for this type of device to date, while maintaining stable electrochemical performance. The energy density of the supercapacitor is 3.37 mWh·cm–3 at a power density of 54.0 mW·cm–3. The results show that 82% of the specific capacitance is retained after 1,000 stretch–release cycles with strains of 700%, demonstrating the superior durability of the elastic supercapacitor and showcasing its potential application in ultra-stretchable flexible electronics.
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Superelastic Wire-shaped supercapacitor sustaining 850% tensile strain based on carbon nanotube@graphene fiber
Nano Research, 2018Co-Authors: Huimin Wang, Kailun Xia, Zhe Yin, Muqiang Jian, Mingchao Zhang, Chunya Wang, Xiaoping Liang, Qi Wang, Yingying ZhangAbstract:Stretchable and flexible supercapacitors are highly desired due to their many potential applications in wearable devices. However, it is challenging to fabricate supercapacitors that can withstand large tensile strain while maintaining high performance. Herein, we report an ultra-stretchable Wire-shaped supercapacitor based on carbon nanotube@graphene@MnO 2 fibers wound around a Superelastic core fiber. The supercapacitor can sustain tensile strain up to 850%, which is the highest value reported for this type of device to date, while maintaining stable electrochemical performance. The energy density of the supercapacitor is 3.37 mWh·cm-3 at a power density of 54.0 mW·cm-3. The results show that 82% of the specific capacitance is retained after 1,000 stretch-release cycles with strains of 700%, demonstrating the superior durability of the elastic supercapacitor and showcasing its potential application in ultra-stretchable flexible electronics.
Huimin Wang - One of the best experts on this subject based on the ideXlab platform.
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Superelastic Wire shaped supercapacitor sustaining 850 tensile strain based on carbon nanotube graphene fiber
Nano Research, 2018Co-Authors: Huimin Wang, Kailun Xia, Zhe Yin, Muqiang Jian, Mingchao Zhang, Chunya Wang, Xiaoping Liang, Qi Wang, Yingying ZhangAbstract:Stretchable and flexible supercapacitors are highly desired due to their many potential applications in wearable devices. However, it is challenging to fabricate supercapacitors that can withstand large tensile strain while maintaining high performance. Herein, we report an ultra-stretchable Wire-shaped supercapacitor based on carbon nanotube@graphene@MnO2 fibers wound around a Superelastic core fiber. The supercapacitor can sustain tensile strain up to 850%, which is the highest value reported for this type of device to date, while maintaining stable electrochemical performance. The energy density of the supercapacitor is 3.37 mWh·cm–3 at a power density of 54.0 mW·cm–3. The results show that 82% of the specific capacitance is retained after 1,000 stretch–release cycles with strains of 700%, demonstrating the superior durability of the elastic supercapacitor and showcasing its potential application in ultra-stretchable flexible electronics.
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Superelastic Wire-shaped supercapacitor sustaining 850% tensile strain based on carbon nanotube@graphene fiber
Nano Research, 2018Co-Authors: Huimin Wang, Kailun Xia, Zhe Yin, Muqiang Jian, Mingchao Zhang, Chunya Wang, Xiaoping Liang, Qi Wang, Yingying ZhangAbstract:Stretchable and flexible supercapacitors are highly desired due to their many potential applications in wearable devices. However, it is challenging to fabricate supercapacitors that can withstand large tensile strain while maintaining high performance. Herein, we report an ultra-stretchable Wire-shaped supercapacitor based on carbon nanotube@graphene@MnO 2 fibers wound around a Superelastic core fiber. The supercapacitor can sustain tensile strain up to 850%, which is the highest value reported for this type of device to date, while maintaining stable electrochemical performance. The energy density of the supercapacitor is 3.37 mWh·cm-3 at a power density of 54.0 mW·cm-3. The results show that 82% of the specific capacitance is retained after 1,000 stretch-release cycles with strains of 700%, demonstrating the superior durability of the elastic supercapacitor and showcasing its potential application in ultra-stretchable flexible electronics.
Kailun Xia - One of the best experts on this subject based on the ideXlab platform.
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Superelastic Wire shaped supercapacitor sustaining 850 tensile strain based on carbon nanotube graphene fiber
Nano Research, 2018Co-Authors: Huimin Wang, Kailun Xia, Zhe Yin, Muqiang Jian, Mingchao Zhang, Chunya Wang, Xiaoping Liang, Qi Wang, Yingying ZhangAbstract:Stretchable and flexible supercapacitors are highly desired due to their many potential applications in wearable devices. However, it is challenging to fabricate supercapacitors that can withstand large tensile strain while maintaining high performance. Herein, we report an ultra-stretchable Wire-shaped supercapacitor based on carbon nanotube@graphene@MnO2 fibers wound around a Superelastic core fiber. The supercapacitor can sustain tensile strain up to 850%, which is the highest value reported for this type of device to date, while maintaining stable electrochemical performance. The energy density of the supercapacitor is 3.37 mWh·cm–3 at a power density of 54.0 mW·cm–3. The results show that 82% of the specific capacitance is retained after 1,000 stretch–release cycles with strains of 700%, demonstrating the superior durability of the elastic supercapacitor and showcasing its potential application in ultra-stretchable flexible electronics.
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Superelastic Wire-shaped supercapacitor sustaining 850% tensile strain based on carbon nanotube@graphene fiber
Nano Research, 2018Co-Authors: Huimin Wang, Kailun Xia, Zhe Yin, Muqiang Jian, Mingchao Zhang, Chunya Wang, Xiaoping Liang, Qi Wang, Yingying ZhangAbstract:Stretchable and flexible supercapacitors are highly desired due to their many potential applications in wearable devices. However, it is challenging to fabricate supercapacitors that can withstand large tensile strain while maintaining high performance. Herein, we report an ultra-stretchable Wire-shaped supercapacitor based on carbon nanotube@graphene@MnO 2 fibers wound around a Superelastic core fiber. The supercapacitor can sustain tensile strain up to 850%, which is the highest value reported for this type of device to date, while maintaining stable electrochemical performance. The energy density of the supercapacitor is 3.37 mWh·cm-3 at a power density of 54.0 mW·cm-3. The results show that 82% of the specific capacitance is retained after 1,000 stretch-release cycles with strains of 700%, demonstrating the superior durability of the elastic supercapacitor and showcasing its potential application in ultra-stretchable flexible electronics.
Qi Wang - One of the best experts on this subject based on the ideXlab platform.
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Superelastic Wire shaped supercapacitor sustaining 850 tensile strain based on carbon nanotube graphene fiber
Nano Research, 2018Co-Authors: Huimin Wang, Kailun Xia, Zhe Yin, Muqiang Jian, Mingchao Zhang, Chunya Wang, Xiaoping Liang, Qi Wang, Yingying ZhangAbstract:Stretchable and flexible supercapacitors are highly desired due to their many potential applications in wearable devices. However, it is challenging to fabricate supercapacitors that can withstand large tensile strain while maintaining high performance. Herein, we report an ultra-stretchable Wire-shaped supercapacitor based on carbon nanotube@graphene@MnO2 fibers wound around a Superelastic core fiber. The supercapacitor can sustain tensile strain up to 850%, which is the highest value reported for this type of device to date, while maintaining stable electrochemical performance. The energy density of the supercapacitor is 3.37 mWh·cm–3 at a power density of 54.0 mW·cm–3. The results show that 82% of the specific capacitance is retained after 1,000 stretch–release cycles with strains of 700%, demonstrating the superior durability of the elastic supercapacitor and showcasing its potential application in ultra-stretchable flexible electronics.
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Superelastic Wire-shaped supercapacitor sustaining 850% tensile strain based on carbon nanotube@graphene fiber
Nano Research, 2018Co-Authors: Huimin Wang, Kailun Xia, Zhe Yin, Muqiang Jian, Mingchao Zhang, Chunya Wang, Xiaoping Liang, Qi Wang, Yingying ZhangAbstract:Stretchable and flexible supercapacitors are highly desired due to their many potential applications in wearable devices. However, it is challenging to fabricate supercapacitors that can withstand large tensile strain while maintaining high performance. Herein, we report an ultra-stretchable Wire-shaped supercapacitor based on carbon nanotube@graphene@MnO 2 fibers wound around a Superelastic core fiber. The supercapacitor can sustain tensile strain up to 850%, which is the highest value reported for this type of device to date, while maintaining stable electrochemical performance. The energy density of the supercapacitor is 3.37 mWh·cm-3 at a power density of 54.0 mW·cm-3. The results show that 82% of the specific capacitance is retained after 1,000 stretch-release cycles with strains of 700%, demonstrating the superior durability of the elastic supercapacitor and showcasing its potential application in ultra-stretchable flexible electronics.
Xiaoping Liang - One of the best experts on this subject based on the ideXlab platform.
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Superelastic Wire shaped supercapacitor sustaining 850 tensile strain based on carbon nanotube graphene fiber
Nano Research, 2018Co-Authors: Huimin Wang, Kailun Xia, Zhe Yin, Muqiang Jian, Mingchao Zhang, Chunya Wang, Xiaoping Liang, Qi Wang, Yingying ZhangAbstract:Stretchable and flexible supercapacitors are highly desired due to their many potential applications in wearable devices. However, it is challenging to fabricate supercapacitors that can withstand large tensile strain while maintaining high performance. Herein, we report an ultra-stretchable Wire-shaped supercapacitor based on carbon nanotube@graphene@MnO2 fibers wound around a Superelastic core fiber. The supercapacitor can sustain tensile strain up to 850%, which is the highest value reported for this type of device to date, while maintaining stable electrochemical performance. The energy density of the supercapacitor is 3.37 mWh·cm–3 at a power density of 54.0 mW·cm–3. The results show that 82% of the specific capacitance is retained after 1,000 stretch–release cycles with strains of 700%, demonstrating the superior durability of the elastic supercapacitor and showcasing its potential application in ultra-stretchable flexible electronics.
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Superelastic Wire-shaped supercapacitor sustaining 850% tensile strain based on carbon nanotube@graphene fiber
Nano Research, 2018Co-Authors: Huimin Wang, Kailun Xia, Zhe Yin, Muqiang Jian, Mingchao Zhang, Chunya Wang, Xiaoping Liang, Qi Wang, Yingying ZhangAbstract:Stretchable and flexible supercapacitors are highly desired due to their many potential applications in wearable devices. However, it is challenging to fabricate supercapacitors that can withstand large tensile strain while maintaining high performance. Herein, we report an ultra-stretchable Wire-shaped supercapacitor based on carbon nanotube@graphene@MnO 2 fibers wound around a Superelastic core fiber. The supercapacitor can sustain tensile strain up to 850%, which is the highest value reported for this type of device to date, while maintaining stable electrochemical performance. The energy density of the supercapacitor is 3.37 mWh·cm-3 at a power density of 54.0 mW·cm-3. The results show that 82% of the specific capacitance is retained after 1,000 stretch-release cycles with strains of 700%, demonstrating the superior durability of the elastic supercapacitor and showcasing its potential application in ultra-stretchable flexible electronics.