Jennifer Neu
Florida State University
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Publication
Featured researches published by Jennifer Neu.
ACS Applied Materials & Interfaces | 2017
Chenkun Zhou; Yu Tian; Zhao Yuan; Haoran Lin; Banghao Chen; Ronald J. Clark; Tristan Dilbeck; Yan Zhou; Joseph Hurley; Jennifer Neu; Tiglet Besara; T. Siegrist; Peter I. Djurovich; Biwu Ma
Organic-inorganic hybrid metal halide perovskites have emerged as a highly promising class of light emitters, which can be used as phosphors for optically pumped white light-emitting diodes (WLEDs). By controlling the structural dimensionality, metal halide perovskites can exhibit tunable narrow and broadband emissions from the free-exciton and self-trapped excited states, respectively. Here, we report a highly efficient broadband yellow light emitter based on zero-dimensional tin mixed-halide perovskite (C4N2H14Br)4SnBrxI6-x (x = 3). This rare-earth-free ionically bonded crystalline material possesses a perfect host-dopant structure, in which the light-emitting metal halide species (SnBrxI6-x4-, x = 3) are completely isolated from each other and embedded in the wide band gap organic matrix composed of C4N2H14Br-. The strongly Stokes-shifted broadband yellow emission that peaked at 582 nm from this phosphor, which is a result of excited state structural reorganization, has an extremely large full width at half-maximum of 126 nm and a high photoluminescence quantum efficiency of ∼85% at room temperature. UV-pumped WLEDs fabricated using this yellow emitter together with a commercial europium-doped barium magnesium aluminate blue phosphor (BaMgAl10O17:Eu2+) can exhibit high color rendering indexes of up to 85.
Journal of the American Chemical Society | 2018
Shane S. Galley; Alexandra A. Arico; Tsung-Han Lee; Xiaoyu Deng; Yongxin Yao; Joseph M. Sperling; Vanessa Proust; Julia S. Storbeck; V. Dobrosavljevic; Jennifer Neu; T. Siegrist; R. E. Baumbach; Thomas E. Albrecht-Schmitt; Nikolas Kaltsoyannis; Nicola Lanatà
A series of f-block chromates, CsM(CrO4)2 (M = La, Pr, Nd, Sm, Eu; Am), were prepared revealing notable differences between the AmIII derivatives and their lanthanide analogs. While all compounds form similar layered structures, the americium compound exhibits polymorphism and adopts both a structure isomorphous with the early lanthanides as well as one that possesses lower symmetry. Both polymorphs are dark red and possess band gaps that are smaller than the LnIII compounds. In order to probe the origin of these differences, the electronic structure of α-CsSm(CrO4)2, α-CsEu(CrO4)2, and α-CsAm(CrO4)2 were studied using both a molecular cluster approach featuring hybrid density functional theory and QTAIM analysis and by the periodic LDA+GA and LDA+DMFT methods. Notably, the covalent contributions to bonding by the f orbitals were found to be more than twice as large in the AmIII chromate than in the SmIII and EuIII compounds, and even larger in magnitude than the Am-5f spin-orbit splitting in this system. Our analysis indicates also that the Am-O covalency in α-CsAm(CrO4)2 is driven by the degeneracy of the 5f and 2p orbitals, and not by orbital overlap.
Journal of the American Chemical Society | 2018
Chenkun Zhou; Haoran Lin; Michael Worku; Jennifer Neu; Yan Zhou; Yu Tian; Sujin Lee; Peter I. Djurovich; T. Siegrist; Biwu Ma
The rich chemistry of organic-inorganic metal halide hybrids has enabled the development of a variety of crystalline structures with controlled morphological and molecular dimensionalities. Here we report for the first time a single crystalline assembly of metal halide clusters, (C9NH20)7(PbCl4)Pb3Cl11, in which lead chloride tetrahedrons (PbCl42-) and face-sharing lead chloride trimer clusters (Pb3Cl115-) cocrystallize with organic cations (C9NH20+) to form a periodical zero-dimensional (0D) structure at the molecular level. Blue light emission peaked at 470 nm with a photoluminescence quantum efficiency (PLQE) of around 83% was realized for this single crystalline hybrid material, which is attributed to the individual lead chloride clusters. Our discovery of single crystalline assembly of metal halide clusters paves a new path to functional cluster assemblies with highly tunable structures and remarkable properties.
Journal of Materials Chemistry C | 2018
Haoran Li; Xin Shan; Jennifer Neu; Thomas Geske; Melissa Davis; Pengsu Mao; Kai Xiao; T. Siegrist; Zhibin Yu
X-ray detectors are demonstrated using composite films of lead-free Cs2AgBiBr6 halide double perovskite embedded in a polymer matrix as the X-ray photoconductors. Polymers with hydroxyl functional groups greatly improve the uniformity of the composite films, and large area dense films are obtained using a simple drop-casting process. X-ray detectors based on the composite films exhibit a sensitivity of 40 μC Gyair−1 cm−2, comparable to the reported sensitivity using Cs2AgBiBr6 single crystals. Such detectors can also tolerate a 5% tensile/compressive strain in the composite films without performance degradation. Pixelated X-ray detectors fabricated on the same composite film can realize X-ray imaging and resolve a proof-of-concept geometric pattern.
Inorganic Chemistry | 2018
Tiglet Besara; Daniel Ramirez; Jifeng Sun; Nathaniel W. Falb; Wangwei Lan; Jennifer Neu; Jeffrey Whalen; David J. Singh; T. Siegrist
Single crystals of a new family of layered lanthanide oxychlorides, Ba3Ln2O5Cl2 (Ln = Gd-Lu), have been synthesized from a molten barium flux. This family crystallizes in the space group I4/mmm (No. 139; Z = 2) with lattice parameters a = 4.3384(1)-4.4541(1) Å and c = 24.5108(7)-24.8448(9) Å. Ba3Ln2O5Cl2 phases are built up of two different blocks: a perovskite double layer of stoichiometry Ba2Ln2O5 formed by corner-connected LnO5 tetragonal bipyramids and a puckered rock-salt-like interlayer of composition BaCl2. A complete structural study along with bond-valence-sum calculations shows that, for lanthanides larger than gadolinium, the structure becomes unstable. Density functional theory calculations show that the valence-band edge is dominated by oxygen orbitals, whereas the conduction band forms from Ba 5d orbitals. The synthesis of this family suggests a route to other potential multianion phases.
Chemical Science | 2018
Chenkun Zhou; Haoran Lin; Yu Tian; Zhao Yuan; Ronald J. Clark; Banghao Chen; Lambertus J. van de Burgt; Jamie C. Wang; Yan Zhou; Kenneth Hanson; Quinton J. Meisner; Jennifer Neu; Tiglet Besara; T. Siegrist; E. S. Lambers; Peter I. Djurovich; Biwu Ma
Chemistry of Materials | 2018
Chenkun Zhou; Michael Worku; Jennifer Neu; Haoran Lin; Yu Tian; Sujin Lee; Yan Zhou; Dan Han; Shiyou Chen; Ayou Hao; Peter I. Djurovich; T. Siegrist; Mao-Hua Du; Biwu Ma
Chemical Science | 2017
Haoran Lin; Chenkun Zhou; Yu Tian; Tiglet Besara; Jennifer Neu; T. Siegrist; Yan Zhou; James D. Bullock; Kirk S. Schanze; Wenmei Ming; Mao Hua Du; Biwu Ma
arXiv: Strongly Correlated Electrons | 2018
Chul-Hee Min; Hendrik Bentmann; Jennifer Neu; Philipp Eck; Simon Moser; Tim Figgemeier; Maximilian Ünzelmann; Katharina Treiber; Peter Lutz; Roland Koch; Chris Jozwiak; Eli Rotenberg; Ronny Thomale; G. Sangiovanni; T. Siegrist; Domenico Di Sante; F. Reinert
Bulletin of the American Physical Society | 2018
Seongphill Moon; Yuxuan Jiang; Zhiling Dun; Jennifer Neu; T. Siegrist; Haidong Zhou; Zhigang Jiang; Dmitry Smirnov