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Dive into the research topics where Aman Preet Kaur is active.

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Featured researches published by Aman Preet Kaur.


Energy and Environmental Science | 2016

High current density, long duration cycling of soluble organic active species for non-aqueous redox flow batteries

Jarrod D. Milshtein; Aman Preet Kaur; Matthew D. Casselman; Jeffrey A. Kowalski; Subrahmanyam Modekrutti; Peter L. Zhang; N. Harsha Attanayake; Corrine F. Elliott; Sean Parkin; Chad Risko; Fikile R. Brushett; Susan A. Odom

Non-aqueous redox flow batteries (NAqRFBs) employing redox-active organic molecules show promise to meet requirements for grid energy storage. Here, we combine the rational design of organic molecules with flow cell engineering to boost NAqRFB performance. We synthesize two highly soluble phenothiazine derivatives, N-(2-methoxyethyl)phenothiazine (MEPT) and N-[2-(2-methoxyethoxy)ethyl]phenothiazine (MEEPT), via a one-step synthesis from inexpensive precursors. Synthesis and isolation of the radical-cation salts permit UV-vis decay studies that illustrate the high stability of these open-shell species. Cyclic voltammetry and bulk electrolysis experiments reveal the promising electrochemical properties of MEPT and MEEPT under dilute conditions. A high performance non-aqueous flow cell, employing interdigitated flow fields and carbon paper electrodes, is engineered and demonstrated; polarization and impedance studies quantify the cells low area-specific resistance (3.2–3.3 Ω cm2). We combine the most soluble derivative, MEEPT, and its tetrafluoroborate radical-cation salt in the flow cell for symmetric cycling, evincing a current density of 100 mA cm−2 with undetectable capacity fade over 100 cycles. This coincident high current density and capacity retention is unprecedented in NAqRFB literature.


Journal of Materials Chemistry | 2014

3,7-Bis(trifluoromethyl)-N-ethylphenothiazine: a redox shuttle with extensive overcharge protection in lithium-ion batteries

Aman Preet Kaur; Selin Ergun; Corrine F. Elliott; Susan A. Odom

3,7-Bis(trifluoromethyl)-N-ethylphenothiazine (BCF3EPT) was evaluated as a redox shuttle for overcharge protection in lithium-ion batteries. Constant-charging experiments were performed to compare the compound to 1,4-di-tert-butyl-2,5-dimethoxybenzene and N-ethylphenothiazine. BCF3EPT showed significantly longer overcharge protection when compared to either benchmark at the same concentrations in LiFePO4/graphite batteries.


Journal of Materials Chemistry | 2016

Overcharge protection of lithium-ion batteries above 4 V with a perfluorinated phenothiazine derivative

Aman Preet Kaur; Matthew D. Casselman; Corrine F. Elliott; Sean Parkin; Chad Risko; Susan A. Odom

Electron-withdrawing substituents are introduced onto the phenothiazine core to raise its oxidation potential for use as a redox shuttle in high-voltage lithium-ion batteries. A perfluorinated derivative oxidizes at 4.3 V vs. Li+/0, and functions for ca. 500 h of 100% overcharge in LiNi0.8Co0.15Al0.05O2/graphite coin cells at a charging rate of C/10.


Journal of Materials Chemistry | 2017

A stable two-electron-donating phenothiazine for application in nonaqueous redox flow batteries

Jeffrey A. Kowalski; Matthew D. Casselman; Aman Preet Kaur; Jarrod D. Milshtein; Corrine F. Elliott; Subrahmanyam Modekrutti; N. Harsha Attanayake; Naijao Zhang; Sean Parkin; Chad Risko; Fikile R. Brushett; Susan A. Odom

Stable electron-donating organic compounds are of interest for numerous applications that require reversible electron-transfer reactions. Although many organic compounds are stable one-electron donors, removing a second electron from a small molecule to form its dication usually leads to rapid decomposition. For cost-effective electrochemical energy storage utilizing organic charge-storage species, the creation of high-capacity materials requires stabilizing more charge whilst keeping molecular weights low. Here we report the simple modification of N-ethylphenothiazine, which is only stable as a radical cation (not as a dication), and demonstrate that introducing electron-donating methoxy groups para to nitrogen leads to dramatically improved stability of the doubly oxidized (dication) state. Our results reveal that this derivative is more stable than an analogous compound with substituents that do not allow for further charge delocalization, rendering it a promising scaffold for developing atom-efficient, two-electron donors.


Energy technology | 2015

A Highly Soluble Organic Catholyte for Non‐Aqueous Redox Flow Batteries

Aman Preet Kaur; Nicolas E. Holubowitch; Selin Ergun; Corrine F. Elliott; Susan A. Odom


Chemical Communications | 2014

Overcharge performance of 3,7-disubstituted N-ethylphenothiazine derivatives in lithium-ion batteries

Selin Ergun; Corrine F. Elliott; Aman Preet Kaur; Sean Parkin; Susan A. Odom


Journal of Analytical and Applied Pyrolysis | 2013

Pyrolysis–GC/MS of sinapyl and coniferyl alcohol

Anne E. Harman-Ware; Mark Crocker; Aman Preet Kaur; Mark S. Meier; Dawn M. Kato; Bert C. Lynn


Journal of Physical Chemistry C | 2014

Controlling Oxidation Potentials in Redox Shuttle Candidates for Lithium-Ion Batteries

Selin Ergun; Corrine F. Elliott; Aman Preet Kaur; Sean Parkin; Susan A. Odom


Journal of The Electrochemical Society | 2016

Overcharge Performance of 3,7-Bis(trifluoromethyl)-N-ethylphenothiazine at High Concentration in Lithium-Ion Batteries

Aman Preet Kaur; Corrine F. Elliott; Selin Ergun; Susan A. Odom


Physical Chemistry Chemical Physics | 2015

The fate of phenothiazine-based redox shuttles in lithium-ion batteries

Matthew D. Casselman; Aman Preet Kaur; Kishore Anand Narayana; Corrine F. Elliott; Chad Risko; Susan A. Odom

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Chad Risko

University of Kentucky

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Sean Parkin

University of Kentucky

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Fikile R. Brushett

Massachusetts Institute of Technology

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Selin Ergun

University of Kentucky

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Jeffrey A. Kowalski

Massachusetts Institute of Technology

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