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  1. 14 wrz 2018 · Here, nanotechnology toward engineering hybrid photosystem involving biological photosynthetic chloroplasts and dual-emissive carbon dots (CDs) is employed for improved photosynthesis by harnessing more effective light.

  2. 11 lip 2022 · Wang, L., Zhang, Z., Guan, R. et al. Synergistic CO 2 reduction and tetracycline degradation by CuInZnS-Ti 3 C 2 T x in one photoredox cycle. Nano Res. 15 , 8010–8018 (2022). https://doi.org/10.1007/s12274-022-4661-3

  3. 15 lip 2024 · The Li||Li symmetrical cells assembled with nanodiamond layer modified PP demonstrated a stable cycle of over 1000 h at 2 mA cm − 2 with a polarization voltage of only 29.3 mV. Additionally, the negative charged layer serves as a physical barrier blocking lithium polysulfide ions, effectively mitigating capacity attenuation.

  4. 13 paź 2023 · In the work, we propose a molecular engineering assembly strategy for the growth of N,P co-doped mesoporous carbon onto Ti 3 C 2 T x nanosheets (NPMC/Ti 3 C 2 T x) under the assistance of phytic acid by using melamine-formaldehyde resin and pluronic P123 (PEO 20 PPO 70 PEO 20) as the carbon/nitrogen source and soft template, respectively.

  5. 12 lip 2020 · Abstract. Zinc–air batteries deliver great potential as emerging energy storage systems but suffer from sluggish kinetics of the cathode oxygen redox reactions that render unsatisfactory cycling lifespan.

  6. Reducing the high charging overpotential of nonaqueous Li–O 2 batteries is very important for their energy storage ability. Herein, we propose a newly photoassisted Li–O 2 battery system, in which a WO 3 nanowires array that grows on carbon textile serves as a photocatalyst on the cathode.

  7. The process of molten salt CO 2 capture and electrochemical conversion provides us with a new way to close the present carbon cycle and mitigate global climate change by transforming the greenhouse gas CO 2 into carbonaceous fuels or chemicals.

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