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The improved electrochemical activity of carbon CNT MoS2 composite is attributed to the unique coaxial architecture and nanostructuring of MoS2.
Based on above results, the improved H2 evolution activity for the Eosin Y-sensitized g-C3N4/PtNi/GO-0.5 g-C3N4/PtNi/GO-0.5 g-C3N4/PtNi/GO-0.5ced charge separation efficiency.
The excellent enhancement of the supramolecular recognition of the γCD TRGO CNT composite is attributed to TRGO.
The propensity for cracking in bulge region of SiCP/A6061 composite is attributed to the development and growth of acicularly shaped pores facilitated by repeated particle fragmentation.
The excellent cycling performance of the composite is attributed to the successful combination of high cycling stability of LTO and high specific capacity of Li2C8H4O4.
The excellent electrochemical performance of PPy@MnMoO4 composite is attributed to the synergistic effects between the polymer chain and MnMoO4 in PPy@MnMoO4 and its well-designed structure.
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The excellent performance of the M-Co3O4/NPC composite was attributed to its favorable structure.
The ablation of the composite was attributed to the heterogeneous reactions between carbon and oxidizing species.
The enhanced electrical properties of the composite are attributed to high degree of alignment, the CNT purity, and the large tube diameter which lead to low junction resistance.
The improved electrochemical properties of Li2ZnTi3O8/C@Cu composite are attributed to the combination of copper additive and carbon layer.
The extraordinary electrochemical properties of the GSP ternary composite are attributed to good combination and the synergistic effect among the three components.
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