Matches in SemOpenAlex for { <https://semopenalex.org/work/W4316467903> ?p ?o ?g. }
- W4316467903 endingPage "454" @default.
- W4316467903 startingPage "454" @default.
- W4316467903 abstract "Recently, there is a need to explore the utilization of various heterostructures using the designed nanocomposites and tuning the surfaces of electrodes for improving the electrochemical performance of supercapacitors (SC). In this work, a novel approach is successfully employed through a facile two-step synthetic route with the assistance of a microwave for only 1 min. Depending on the glass transition of a polystyrene (PS) substrate and electrochemical deposition (ECD) of electroactive Ni-Co layered double hydroxides (LDHs), a hierarchically designed flake-like morphology can be readily prepared to enhance the surface-active sites, which allows a rhombohedral Ni-Co LDHs electrode to obtain superior electrochemical properties. Further, the interactions between electrode and electrolyte during the diffusion of ions are highly simplified using multiple enhanced electroactive sites and shorter pathways for electron transfer. The unique surface architecture of the PS substrate and the synergistic effect of the bimetallic components in Ni-Co LDHs enable this substrate to obtain desired electrochemical activity in charge storage systems. The optimized MWC Co0.5Ni0.5 electrode exhibited an areal capacity of 100 µAh/cm2 at a current density of 1 mA/cm2 and a remarkable capacity retention of 91.2% over 5000 continuous charging and discharging cycles due to its remarkable synergistic effect of abundant faradaic redox reaction kinetics. The HSC device is assembled with the combination of optimized MWC Co0.5Ni0.5 and activated carbon as a positive and negative electrode, respectively. Further, the electrochemical test results demonstrated that MWC Co0.5Ni0.5 //AC HSC device showed a high areal capacitance of 531.25 mF/cm2 at a current density of 5 mA/cm2. In addition, the fabricated an aqueous HSC device showed a power density of 16 mW/cm2 at an energy density of 0.058 mWh/cm2, along with the remarkable capacity retention of 82.8% even after 10,000 continuous charging and discharging cycles. Moreover, the assembled hybrid supercapacitor (HSC) device is integrated with a triboelectric nanogenerator (TENG) for the development of energy conversion and storage systems. Not only an extensive survey of materials but also an innovative solution for recent progress can confirm the wide range of potential SC applications. Remarkably, this study is a new way of constructing self-powered energy storage systems in the field of sustainable wearable electronics and future smart sensing systems." @default.
- W4316467903 created "2023-01-16" @default.
- W4316467903 creator A5005952459 @default.
- W4316467903 creator A5025404623 @default.
- W4316467903 creator A5066653862 @default.
- W4316467903 creator A5067307922 @default.
- W4316467903 date "2023-01-15" @default.
- W4316467903 modified "2023-10-11" @default.
- W4316467903 title "Microwave-Assisted Hierarchically Grown Flake-like NiCo Layered Double Hydroxide Nanosheets on Transitioned Polystyrene towards Triboelectricity-Driven Self-Charging Hybrid Supercapacitors" @default.
- W4316467903 cites W1547395222 @default.
- W4316467903 cites W2022359377 @default.
- W4316467903 cites W2055937842 @default.
- W4316467903 cites W2066410984 @default.
- W4316467903 cites W2152754138 @default.
- W4316467903 cites W2157447284 @default.
- W4316467903 cites W2283357595 @default.
- W4316467903 cites W2291888163 @default.
- W4316467903 cites W2320619246 @default.
- W4316467903 cites W2322900936 @default.
- W4316467903 cites W2334044708 @default.
- W4316467903 cites W2340135023 @default.
- W4316467903 cites W2412443497 @default.
- W4316467903 cites W2415360092 @default.
- W4316467903 cites W2465643209 @default.
- W4316467903 cites W2521442615 @default.
- W4316467903 cites W2530261261 @default.
- W4316467903 cites W2568418835 @default.
- W4316467903 cites W2578677503 @default.
- W4316467903 cites W2607466392 @default.
- W4316467903 cites W2607501429 @default.
- W4316467903 cites W2613098567 @default.
- W4316467903 cites W2616775517 @default.
- W4316467903 cites W2741485304 @default.
- W4316467903 cites W2767082230 @default.
- W4316467903 cites W2772467292 @default.
- W4316467903 cites W2782024723 @default.
- W4316467903 cites W2791256747 @default.
- W4316467903 cites W2886672327 @default.
- W4316467903 cites W2896377580 @default.
- W4316467903 cites W2896563205 @default.
- W4316467903 cites W2897976075 @default.
- W4316467903 cites W2898127776 @default.
- W4316467903 cites W2914383570 @default.
- W4316467903 cites W2922180408 @default.
- W4316467903 cites W2947872715 @default.
- W4316467903 cites W2954836791 @default.
- W4316467903 cites W2955360364 @default.
- W4316467903 cites W2963938067 @default.
- W4316467903 cites W2971866931 @default.
- W4316467903 cites W2974210604 @default.
- W4316467903 cites W2974262273 @default.
- W4316467903 cites W2978647613 @default.
- W4316467903 cites W2981065290 @default.
- W4316467903 cites W2982628246 @default.
- W4316467903 cites W2995502490 @default.
- W4316467903 cites W2995949678 @default.
- W4316467903 cites W2998072109 @default.
- W4316467903 cites W2998947490 @default.
- W4316467903 cites W3004527650 @default.
- W4316467903 cites W3005224667 @default.
- W4316467903 cites W3006003149 @default.
- W4316467903 cites W3014404576 @default.
- W4316467903 cites W3016177966 @default.
- W4316467903 cites W3017251302 @default.
- W4316467903 cites W3024753356 @default.
- W4316467903 cites W3025382546 @default.
- W4316467903 cites W3035961253 @default.
- W4316467903 cites W3037088074 @default.
- W4316467903 cites W3040028126 @default.
- W4316467903 cites W3045232000 @default.
- W4316467903 cites W3046071481 @default.
- W4316467903 cites W3086705159 @default.
- W4316467903 cites W3087834145 @default.
- W4316467903 cites W3097432560 @default.
- W4316467903 cites W3113299796 @default.
- W4316467903 cites W3120486402 @default.
- W4316467903 cites W3157516635 @default.
- W4316467903 cites W3161398475 @default.
- W4316467903 cites W3166157032 @default.
- W4316467903 cites W4205546060 @default.
- W4316467903 cites W4214936001 @default.
- W4316467903 cites W4229442461 @default.
- W4316467903 cites W4280653391 @default.
- W4316467903 cites W4292382502 @default.
- W4316467903 cites W4293767395 @default.
- W4316467903 cites W4295921716 @default.
- W4316467903 doi "https://doi.org/10.3390/polym15020454" @default.
- W4316467903 hasPubMedId "https://pubmed.ncbi.nlm.nih.gov/36679336" @default.
- W4316467903 hasPublicationYear "2023" @default.
- W4316467903 type Work @default.
- W4316467903 citedByCount "7" @default.
- W4316467903 countsByYear W43164679032023 @default.
- W4316467903 crossrefType "journal-article" @default.
- W4316467903 hasAuthorship W4316467903A5005952459 @default.
- W4316467903 hasAuthorship W4316467903A5025404623 @default.
- W4316467903 hasAuthorship W4316467903A5066653862 @default.
- W4316467903 hasAuthorship W4316467903A5067307922 @default.
- W4316467903 hasBestOaLocation W43164679031 @default.