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The effect of synthesis temperature on the properties of TiO2 (B) nanorods and its precursors as anode materials for lithium-ion batteries

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dc.contributor.author Ncube, Ntombizodwa M
dc.contributor.author Zheng, Haitao
dc.date.accessioned 2020-10-08T09:20:09Z
dc.date.available 2020-10-08T09:20:09Z
dc.date.issued 2020-01
dc.identifier.citation Ncube, N.M. & Zheng, H. 2020. The effect of synthesis temperature on the properties of TiO2 (B) nanorods and its precursors as anode materials for lithium-ion batteries. Materials Research Express, vol 7(1), pp. 1-6 en_US
dc.identifier.issn 2053-1591
dc.identifier.uri https://iopscience.iop.org/article/10.1088/2053-1591/ab61bc
dc.identifier.uri https://iopscience.iop.org/article/10.1088/2053-1591/ab61bc/pdf
dc.identifier.uri http://hdl.handle.net/10204/11614
dc.description Copyright: 2020. IOP Publishing en_US
dc.description.abstract In this work, we carried out a detailed research on the effect of synthesis temperature on the properties of TiO(sub2) (B) nanorods and its hydrogen titanate precursors. At the initial stage, hydrogen titanates (HTOs)were synthesised at different temperatures(140 °C–180 °C). The HTO materials were then annealed at 400 °C for 2 h in the second-stage to produce TiO(sub2) (B) nanorods. It is interesting to note that the pure anatase phase of TiO(sub2) nanorods(TO140)was achieved from the HTO material (HTO140) prepared at 140 °C, while the TiO(sub2) (B) nanorods were only formed from those synthesised at 160 °C(HTO160) and 180 °C(HTO180). In the evaluation of these materials as anodes for lithium ion batteries(LIBs), HTO140 showed better rate performance at higher current rates(500–1000 mAg(sup-1) ). However, HTO160 and HTO180 displayed lower initial discharge capacities than that of their precursor(the commercial TO) at 200 mAg(sup-1) . Addtionally, HTO160 exhibited the best stability with 71.5% retention after 100 cycles at 200 mAg(sup-1) . Moreover, the annealed product of TO140 from HTO140 demonstrated the highest initial discharge capacity with a value of 164.3 mAhg(sup-1) at a current of 200 mAg(sup-1) , which is corresponding to its low charge transfer resistance. However, TO160 showed a superior stability with 92.3% retained capacity after 100 cycles at 200 mAg(sup-1). Overall, 160 °C is the optimum temperature to synthesize TiO(sub2) (B) nanorods, regarding to its good cycling stability and mild capacity as anode materials. The investigation showed that the synthesis temperature is a determining factor to producing either TiO(sub2) (B) or anatase TiO(sub2) nanorods, has an influence on the properties of the precursor as well as the TiO(sub2) (B) as anode materials for LIBs. en_US
dc.language.iso en en_US
dc.publisher IOP Publishing en_US
dc.relation.ispartofseries Workflow;23737
dc.subject Anodes en_US
dc.subject Lithium ion batteries en_US
dc.subject Hydrogen titanate en_US
dc.subject Nanorods en_US
dc.subject TiO2(B) en_US
dc.title The effect of synthesis temperature on the properties of TiO2 (B) nanorods and its precursors as anode materials for lithium-ion batteries en_US
dc.type Article en_US
dc.identifier.apacitation Ncube, N. M., & Zheng, H. (2020). The effect of synthesis temperature on the properties of TiO2 (B) nanorods and its precursors as anode materials for lithium-ion batteries. http://hdl.handle.net/10204/11614 en_ZA
dc.identifier.chicagocitation Ncube, Ntombizodwa M, and Haitao Zheng "The effect of synthesis temperature on the properties of TiO2 (B) nanorods and its precursors as anode materials for lithium-ion batteries." (2020) http://hdl.handle.net/10204/11614 en_ZA
dc.identifier.vancouvercitation Ncube NM, Zheng H. The effect of synthesis temperature on the properties of TiO2 (B) nanorods and its precursors as anode materials for lithium-ion batteries. 2020; http://hdl.handle.net/10204/11614. en_ZA
dc.identifier.ris TY - Article AU - Ncube, Ntombizodwa M AU - Zheng, Haitao AB - In this work, we carried out a detailed research on the effect of synthesis temperature on the properties of TiO(sub2) (B) nanorods and its hydrogen titanate precursors. At the initial stage, hydrogen titanates (HTOs)were synthesised at different temperatures(140 °C–180 °C). The HTO materials were then annealed at 400 °C for 2 h in the second-stage to produce TiO(sub2) (B) nanorods. It is interesting to note that the pure anatase phase of TiO(sub2) nanorods(TO140)was achieved from the HTO material (HTO140) prepared at 140 °C, while the TiO(sub2) (B) nanorods were only formed from those synthesised at 160 °C(HTO160) and 180 °C(HTO180). In the evaluation of these materials as anodes for lithium ion batteries(LIBs), HTO140 showed better rate performance at higher current rates(500–1000 mAg(sup-1) ). However, HTO160 and HTO180 displayed lower initial discharge capacities than that of their precursor(the commercial TO) at 200 mAg(sup-1) . Addtionally, HTO160 exhibited the best stability with 71.5% retention after 100 cycles at 200 mAg(sup-1) . Moreover, the annealed product of TO140 from HTO140 demonstrated the highest initial discharge capacity with a value of 164.3 mAhg(sup-1) at a current of 200 mAg(sup-1) , which is corresponding to its low charge transfer resistance. However, TO160 showed a superior stability with 92.3% retained capacity after 100 cycles at 200 mAg(sup-1). Overall, 160 °C is the optimum temperature to synthesize TiO(sub2) (B) nanorods, regarding to its good cycling stability and mild capacity as anode materials. The investigation showed that the synthesis temperature is a determining factor to producing either TiO(sub2) (B) or anatase TiO(sub2) nanorods, has an influence on the properties of the precursor as well as the TiO(sub2) (B) as anode materials for LIBs. DA - 2020-01 DB - ResearchSpace DP - CSIR KW - Anodes KW - Lithium ion batteries KW - Hydrogen titanate KW - Nanorods KW - TiO2(B) LK - https://researchspace.csir.co.za PY - 2020 SM - 2053-1591 T1 - The effect of synthesis temperature on the properties of TiO2 (B) nanorods and its precursors as anode materials for lithium-ion batteries TI - The effect of synthesis temperature on the properties of TiO2 (B) nanorods and its precursors as anode materials for lithium-ion batteries UR - http://hdl.handle.net/10204/11614 ER - en_ZA


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