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Pseudocapacitive Contributions to Electrochemical Energy Storage in TiO<sub>2</sub> (Anatase) Nanoparticles

The Journal of Physical Chemistry C · 2007 · Vol. 111(40) · pp. 14925–14931
John WangJulien PolleuxJames LimBruce Dunn

Abstract

The advantages in using nanostructured materials for electrochemical energy storage have largely focused on the benefits associated with short path lengths. In this paper, we consider another contribution, that of the capacitive effects, which become increasingly important at nanoscale dimensions. Nanocrystalline TiO2 (anatase) was studied over a dimensional regime where both capacitive and lithium intercalation processes contribute to the total stored charge. An analysis of the voltammetric sweep data was used to distinguish between the amount of charge stored by these two processes. At particle sizes below 10 nm, capacitive contributions became increasingly important, leading to greater amounts of total stored charge (gravimetrically normalized) with decreasing TiO2 particle size. The area normalized capacitance was determined to be well above 100 μF/cm2, confirming that the capacitive contribution was pseudocapacitive in nature. Moreover, reducing the particle size to the nanoscale regime led to faster charge/discharge rates because the diffusion-controlled lithium ion intercalation process was replaced by faradaic reactions which occur at the surface of the material. The charge storage and kinetics benefits derived from using nanoscale metal oxides provide an interesting direction for the design of materials that offer both power density and energy density.

Advancements in Battery MaterialsSupercapacitor Materials and FabricationAdvanced battery technologies researchMaterials scienceAnataseNanotechnologyCapacitive sensingNanoparticleEnergy storageLithium (medication)Nanocrystalline materialSupercapacitorCapacitance
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References
Li<sup>+</sup> Ion Insertion in TiO<sub>2</sub> (Anatase). 2. Voltammetry on Nanoporous Films
The Journal of Physical Chemistry B · 1997 · 1,602 citations
Nanocrystallinity effects in lithium battery materials
Physical Chemistry Chemical Physics · 2003 · 699 citations
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