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Mesoporous Titania Microspheres with Highly Tunable Pores as an Anode Material for Lithium Ion Batteries

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Mesoporous Titania Microspheres with Highly Tunable Pores as an Anode Material for Lithium Ion Batteries. / Fischer, Michael G.; Hua, Xiao; Wilts, Bodo D. et al.
In: ACS Applied Materials and Interfaces, Vol. 9, No. 27, 12.07.2017, p. 22388-22397.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

Fischer, MG, Hua, X, Wilts, BD, Gunkel, I, Bennett, TM & Steiner, U 2017, 'Mesoporous Titania Microspheres with Highly Tunable Pores as an Anode Material for Lithium Ion Batteries', ACS Applied Materials and Interfaces, vol. 9, no. 27, pp. 22388-22397. https://doi.org/10.1021/acsami.7b03155

APA

Fischer, M. G., Hua, X., Wilts, B. D., Gunkel, I., Bennett, T. M., & Steiner, U. (2017). Mesoporous Titania Microspheres with Highly Tunable Pores as an Anode Material for Lithium Ion Batteries. ACS Applied Materials and Interfaces, 9(27), 22388-22397. https://doi.org/10.1021/acsami.7b03155

Vancouver

Fischer MG, Hua X, Wilts BD, Gunkel I, Bennett TM, Steiner U. Mesoporous Titania Microspheres with Highly Tunable Pores as an Anode Material for Lithium Ion Batteries. ACS Applied Materials and Interfaces. 2017 Jul 12;9(27):22388-22397. doi: 10.1021/acsami.7b03155

Author

Fischer, Michael G. ; Hua, Xiao ; Wilts, Bodo D. et al. / Mesoporous Titania Microspheres with Highly Tunable Pores as an Anode Material for Lithium Ion Batteries. In: ACS Applied Materials and Interfaces. 2017 ; Vol. 9, No. 27. pp. 22388-22397.

Bibtex

@article{9719c676baad4055b91ef5ec099075b8,
title = "Mesoporous Titania Microspheres with Highly Tunable Pores as an Anode Material for Lithium Ion Batteries",
abstract = "Mesoporous titania microspheres (MTMs) have been employed in many applications, including (photo)catalysis as well as energy conversion and storage. Their morphology offers a hierarchical structural design motif that lends itself to being incorporated into established large-scale fabrication processes. Despite the fact that device performance hinges on the precise morphological characteristics of these materials, control over the detailed mesopore structure and the tunability of the pore size remains a challenge. Especially the accessibility of a wide range of mesopore sizes by the same synthesis method is desirable, as this would allow for a comparative study of the relationship between structural features and performance. Here, we report a method that combines sol–gel chemistry with polymer micro- and macrophase separation to synthesize porous titania spheres with diameters in the micrometer range. The as-prepared MTMs exhibit well-defined, accessible porosities with mesopore sizes adjustable by the choice of the polymers. When applied as an anode material in lithium ion batteries (LIBs), the MTMs demonstrate excellent performance. The influence of the pore size and an in situ carbon coating on charge transport and storage is examined, providing important insights for the optimization of structured titania anodes in LIBs. Our synthesis strategy presents a facile one-pot approach that can be applied to different structure-directing agents and inorganic materials, thus further extending its scope of application.",
author = "Fischer, {Michael G.} and Xiao Hua and Wilts, {Bodo D.} and Ilja Gunkel and Bennett, {Thomas M.} and Ullrich Steiner",
year = "2017",
month = jul,
day = "12",
doi = "10.1021/acsami.7b03155",
language = "English",
volume = "9",
pages = "22388--22397",
journal = "ACS Applied Materials and Interfaces",
issn = "1944-8244",
publisher = "American Chemical Society",
number = "27",

}

RIS

TY - JOUR

T1 - Mesoporous Titania Microspheres with Highly Tunable Pores as an Anode Material for Lithium Ion Batteries

AU - Fischer, Michael G.

AU - Hua, Xiao

AU - Wilts, Bodo D.

AU - Gunkel, Ilja

AU - Bennett, Thomas M.

AU - Steiner, Ullrich

PY - 2017/7/12

Y1 - 2017/7/12

N2 - Mesoporous titania microspheres (MTMs) have been employed in many applications, including (photo)catalysis as well as energy conversion and storage. Their morphology offers a hierarchical structural design motif that lends itself to being incorporated into established large-scale fabrication processes. Despite the fact that device performance hinges on the precise morphological characteristics of these materials, control over the detailed mesopore structure and the tunability of the pore size remains a challenge. Especially the accessibility of a wide range of mesopore sizes by the same synthesis method is desirable, as this would allow for a comparative study of the relationship between structural features and performance. Here, we report a method that combines sol–gel chemistry with polymer micro- and macrophase separation to synthesize porous titania spheres with diameters in the micrometer range. The as-prepared MTMs exhibit well-defined, accessible porosities with mesopore sizes adjustable by the choice of the polymers. When applied as an anode material in lithium ion batteries (LIBs), the MTMs demonstrate excellent performance. The influence of the pore size and an in situ carbon coating on charge transport and storage is examined, providing important insights for the optimization of structured titania anodes in LIBs. Our synthesis strategy presents a facile one-pot approach that can be applied to different structure-directing agents and inorganic materials, thus further extending its scope of application.

AB - Mesoporous titania microspheres (MTMs) have been employed in many applications, including (photo)catalysis as well as energy conversion and storage. Their morphology offers a hierarchical structural design motif that lends itself to being incorporated into established large-scale fabrication processes. Despite the fact that device performance hinges on the precise morphological characteristics of these materials, control over the detailed mesopore structure and the tunability of the pore size remains a challenge. Especially the accessibility of a wide range of mesopore sizes by the same synthesis method is desirable, as this would allow for a comparative study of the relationship between structural features and performance. Here, we report a method that combines sol–gel chemistry with polymer micro- and macrophase separation to synthesize porous titania spheres with diameters in the micrometer range. The as-prepared MTMs exhibit well-defined, accessible porosities with mesopore sizes adjustable by the choice of the polymers. When applied as an anode material in lithium ion batteries (LIBs), the MTMs demonstrate excellent performance. The influence of the pore size and an in situ carbon coating on charge transport and storage is examined, providing important insights for the optimization of structured titania anodes in LIBs. Our synthesis strategy presents a facile one-pot approach that can be applied to different structure-directing agents and inorganic materials, thus further extending its scope of application.

U2 - 10.1021/acsami.7b03155

DO - 10.1021/acsami.7b03155

M3 - Journal article

VL - 9

SP - 22388

EP - 22397

JO - ACS Applied Materials and Interfaces

JF - ACS Applied Materials and Interfaces

SN - 1944-8244

IS - 27

ER -