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Sio2 tio2 core shell
Sio2 tio2 core shell













sio2 tio2 core shell

Mamat, Experimental investigation of heat transfer and friction factor of TiO 2–SiO 2 nanofluids in water:ethylene glycol mixture, Int. Mamat, Experimental investigation of nanoparticle mixture ratios on TiO 2–SiO 2 nanofluids heat transfer performance under turbulent flow, Int. Akbarzade, Experimental investigation of force convection heat transfer in a car radiator filled with SiO 2–water nanofluid, Int. Akbari, An investigation on stability, electrical and thermal characteristics of transformer insulting oil nanofluids, Int. Khayat, Convective heat transfer of oil based nanofluid flow inside a circular tube, Int. Ardehali, Modeling of TiO 2–water nanofluid effect on heat transfer and pressure drop, Int. Sharma, Experimental investigation on heat transfer performance of TiO 2 nanofluids in water–ethylene glycol mixture, Int. Sonawane, Intensification of convective heat transfer in water/ethylene glycol based nanofluids containing TiO 2 nanoparticles, Chem. Rao, Experimental studies on thermal conductivity of blends of ethylene glycol–water-based TiO 2 nanofluid, Int. Mohamad, Effects of working temperature on thermo-physical properties and forced convection heat transfer of TiO 2 nanofluids in water–ethylene glycol mixture, Appl. Aloueyan, Experimental investigation on heat transfer characteristics and pressure drop of BPHE (brazed plate heat exchanger) using TiO 2–water nanofluid, Exp. Wongwises, Measurement of temperature-dependent thermal conductivity and viscosity of TiO 2–water nanofluids, Exp. Kheiri, Numerical comparison of turbulent heat transfer and flow characteristics of SiO 2/water nanofluid within helically corrugated tubes and plain tube, Int. Wongwises, Experimental and numerical investigation of nanofluids heat transfer characteristics for application in solar heat exchangers, Int. Altway, Optimization of the single staggered wire and tube heat exchanger, MATEC Web Conf., 58, 01017 (2016).Į. Altway, Modelling of the single staggered wire and tube heat exchanger, Int. This enhancement was mainly because of the scattering effect of SiO 2 while the presence of Au is too small to promote the localized surface resonance.I. Compared to DSSC using basic photoanode TiO 2, the core-shells have increased the efficiency of 92.9%. Only for 90 ml SiO 2 addition can form intended core-shell nanoparticles. The result revealed that the addition of SiO 2 above a certain level leads to agglomeration and uneven distribution of core-shell. The fractions of SiO 2 extracted from Sidoarjo mud to Au and TiO 2 were varied. In this study, the core-shell characteristics of 2 and their effects on DSSC performance were investigated. Gold nanoparticles should be fabricated in core-shell nanostructure to prevent corrosion, recombination and back reaction of excited electron because of direct contact between metal nanoparticles and liquid electrolyte. Au is known to be able to increase light harvesting while silica acts as scatterer and back recombination inhibitor. One of the methods to enhance the performance of Dye-Sensitized Solar Cell (DSSC) is by adding SiO 2 nanoparticles and Au nanoparticles.















Sio2 tio2 core shell