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Dive into the research topics where Philip P. Rodenbough is active.

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Featured researches published by Philip P. Rodenbough.


Angewandte Chemie | 2014

Bandgap Engineering through Controlled Oxidation of Polythiophenes

Sujun Wei; Jianlong Xia; Emma J. Dell; Yivan Jiang; Rui Song; Hyunbok Lee; Philip P. Rodenbough; Alejandro L. Briseno; Luis M. Campos

The use of Rozens reagent (HOF⋅CH3 CN) to convert polythiophenes to polymers containing thiophene-1,1-dioxide (TDO) is described. The oxidation of polythiophenes can be controlled with this potent, yet orthogonal reagent under mild conditions. The oxidation of poly(3-alkylthiophenes) proceeds at room temperature in a matter of minutes, introducing up to 60 % TDO moieties in the polymer backbone. The resulting polymers have a markedly low-lying lowest unoccupied molecular orbital (LUMO), consequently exhibiting a small bandgap. This approach demonstrates that modulating the backbone electronic structure of well-defined polymers, rather than varying the monomers, is an efficient means of tuning the electronic properties of conjugated polymers.


Applied Physics Letters | 2015

Size dependent compressibility of nano-ceria: Minimum near 33 nm

Philip P. Rodenbough; Junhua Song; David Walker; Simon M. Clark; Bora Kalkan; Siu-Wai Chan

We report the crystallite-size-dependency of the compressibility of nanoceria under hydrostatic pressure for a wide variety of crystallite diameters and comment on the size-based trends indicating an extremum near 33 nm. Uniform nano-crystals of ceria were synthesized by basic precipitation from cerium (III) nitrate. Size-control was achieved by adjusting mixing time and, for larger particles, a subsequent annealing temperature. The nano-crystals were characterized by transmission electron microscopy and standard ambient x-ray diffraction (XRD). Compressibility, or its reciprocal, bulk modulus, was measured with high-pressure XRD at LBL-ALS, using helium, neon, or argon as the pressure-transmitting medium for all samples. As crystallite size decreased below 100 nm, the bulk modulus first increased, and then decreased, achieving a maximum near a crystallite diameter of 33 nm. We review earlier work and examine several possible explanations for the peaking of bulk modulus at an intermediate crystallite size.


Journal of Chemical Education | 2015

3D-Printing Crystallographic Unit Cells for Learning Materials Science and Engineering

Philip P. Rodenbough; William B. Vanti; Siu-Wai Chan


Journal of the American Ceramic Society | 2017

Lattice Expansion in Metal Oxide Nanoparticles: MgO, Co3O4, & Fe3O4

Philip P. Rodenbough; Chengjunyi Zheng; Yuxuan Liu; Chenyuan Hui; Yuxuan Xia; Ziying Ran; Yanjun Hu; Siu-Wai Chan


Journal of Physical Chemistry C | 2015

Reduction of Nano-Cu2O: Crystallite Size Dependent and the Effect of Nano-Ceria Support

Junhua Song; Philip P. Rodenbough; Wenqian Xu; Sanjaya D. Senanayake; Siu-Wai Chan


International Journal of Applied Ceramic Technology | 2016

Size-Dependent Crystal Properties of Nanocuprite

Junhua Song; Philip P. Rodenbough; Lihua Zhang; Siu-Wai Chan


Materials Chemistry and Physics | 2017

Crystallite size dependency of thermal expansion in ceria nanoparticles

Philip P. Rodenbough; Mikhail Lipatov; Siu-Wai Chan


Ceramics International | 2018

Thermal oxygen exchange cycles in mixed manganese perovskites

Philip P. Rodenbough; Siu-Wai Chan


Journal of Nanoparticle Research | 2017

Crystallite-size dependency of the pressure and temperature response in nanoparticles of magnesia

Philip P. Rodenbough; Siu-Wai Chan


Angewandte Chemie | 2014

Inside Back Cover: Bandgap Engineering through Controlled Oxidation of Polythiophenes (Angew. Chem. Int. Ed. 7/2014)

Sujun Wei; Jianlong Xia; Emma J. Dell; Yivan Jiang; Rui Song; Hyunbok Lee; Philip P. Rodenbough; Alejandro L. Briseno; Luis M. Campos

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Alejandro L. Briseno

University of Massachusetts Amherst

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Hyunbok Lee

Kangwon National University

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