Sentence examples for remarkable energy density from inspiring English sources

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As a consequence, VN//Co(OH 2-PHMSs OH 2-PHMSsgh areal capacitance offeredF cm−2, volumetric capacitance of 39.7 F cm−3, and remarkable energy density of 12.4 mWhigh−3.

An assembled symmetric supercapacitor (SC) shows a remarkable energy density of 11.4 Wh kg−1 and a high power density of 12.9 kW kg−1.

The assembled symmetric Fe(NO3 3 supercapacitor device can exhibit remarkable energy density of 11.9 Wh/kg at the power density of 0.4 kW/kg.

The resultant planar hybrid micro-supercapacitors display high areal capacitance of 21 mF cm−2 and volumetric capacitance of 39.7 F cm−3 at 0.2 mA cm−2, and exhibit remarkable energy density of 12.4 mWh cm−3 and power density of 1750 mW cm−3, based on the whole device, outperforming most reported planar hybrid micro-supercapacitors and planar asymmetric micro-supercapacitors.

Benefiting from the synergy of VN nanosheets and Co(OH 2 nanoflowers, their strong interfacial interaction with EG nanosheets, and advanced in-plane geometry, the resultant VN//Co(OH 2-PHMSs displayed high areal capacitance OH 2-PHMSsm−2, volumetric capacitance of 39.7 F cm−3, andisplayedble energy density of 12.4 mWhigh−3, outperforming most reported PHMSs.

Benefitting from the balanced capacity on positive and negative electrode, the fabricated asymmetric supercapacitor exhibit a remarkable energy density of 52.2 Wh kg−1 and excellent cycling life with 97.3% capacitance retention ratio after 10,000 cycles.

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The TiN@MnO2//TiN-ASC device delivers a remarkable volumetric energy density of 0.55 mWh cm−3 and excellent rate capability as well as outstanding cycle performance.

Both LIC and NIC systems demonstrate remarkable energy and power density enhancement over its EDLC counterpart while showing good cycle life.

Lithium-sulfur (Li-S) battery is considered as the next-generation of cost-efficient rechargeable battery systems to fulfill clean energy transportation systems due to its remarkable high theoretical energy density.

As an electrode, the as-fabricated 3D NiO@MnOOH core/shell nanosheet hierarchies exhibited favorable electrochemical performances, i.e., high specific capacitance of 1625.3 F/g at a current density of 4 A/g with a remarkable rate capability and excellent energy density (80.0 Wh/kg), as well as good cycling stability (105.7% of the initial capacitance after 5000 cycles).

Utilizing this PANI/GO-H2SO4 nanocomposite as the electrodes in a symmetric configuration resulted in the development of devices with remarkable performance including a maximum energy density of 40 Wh kg−1 and a power density up to 15.3 kW kg−1 with an excellent cycle life (only 4.3% loss after 5000 cycles).

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