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The as-prepared HC/RGO composites display a nearly two-dimensional architecture.
As the electrode material of supercapacitors, the composites display a high specific capacitance of 1422 F g−1 and retain the specific capacitance of 100.7% after 1500 cycles.
The resin and composites display a two-stage diffusion behavior, with the first and second stages being diffusion- and relaxation-controlled, respectively.
When the IO3 − is added, both composites display a couple of oxidation/reduction peaks, and the reduction peak current value is higher than that of respective oxidation peak, which is resulted from the reduction of IO3 − to I− [48].
More importantly, the CoO rods/porous biocarbons composites display a superior long-term stable reversible capacity of about 550 mAh g−1 at the high current density of 5 A g−1 after 600 cycles.
Similar to the reference experiments, fibers in hybrid strong interface/medium interface fiber composites display a decrease in aspect ratio and an increase in interfacial shear stress (IFSS) with the increase of inter-fiber spacing.
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Moreover, g-C3N4/ZnS composites display an improved supercapacitor performance in terms of specific capacitance compared to the pure g-C3N4 and ZnS.
PL spectra, EIS spectra, and photocurrent responses reveal that the composites display an enhanced separation efficiency of photogenerated electron-hole pairs, which is due to the charge transfer between Bi4Ti3O12 and Ag3PO4.
In addition, such Co-LDH nanocages/graphene composites display an excellent cycling stability; the capacitance retention of Co-LDH nanocages/graphene composite electrode remains 90.4% after 10000 cycles at a current density of 2 A g−1.
PL spectroscopy confirmed that the synthesized composites displayed a strong eye-visible green light emission.
PCL and PCL-TCP-fibrin composites displayed a loading efficiency of 70%and43%3%, respectively.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com