Glenn Teeter
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Explore the profile of Glenn Teeter including associated specialties, affiliations and a list of published articles.
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21
Citations
178
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Recent Articles
1.
Pach G, Adhikari P, Quinn J, Wang C, Singh A, Verma A, et al.
ACS Energy Lett
. 2024 Jun;
9(6):2492-2499.
PMID: 38911534
Silicon's potential as a lithium-ion battery (LIB) anode is hindered by the reactivity of the lithium silicide (Li Si) interface. This study introduces an innovative approach by alloying silicon with...
2.
Fishler Y, Leick N, Teeter G, Holewinski A, Smith W
ACS Appl Mater Interfaces
. 2024 Apr;
16(15):19780-19791.
PMID: 38584348
electrochemical attenuated total reflection surface-enhanced infrared absorption spectroscopy (EC ATR-SEIRAS) is a valuable method for a fundamental understanding of electrochemical interfaces under real operating conditions. The applicability of this method...
3.
Xiao C, Jiang C, Nardone M, Albin D, Danielson A, Munshi A, et al.
ACS Appl Mater Interfaces
. 2022 Aug;
14(35):39976-39984.
PMID: 36000715
Solar cells are essentially minority carrier devices, and it is therefore of central importance to understand the pertinent carrier transport processes. Here, we advanced a transport imaging technique to directly...
4.
Zhang F, Park S, Yao C, Lu H, Dunfield S, Xiao C, et al.
Science
. 2021 Nov;
375(6576):71-76.
PMID: 34822309
The performance of three-dimensional (3D) organic-inorganic halide perovskite solar cells (PSCs) can be enhanced through surface treatment with 2D layered perovskites that have efficient charge transport. We maximized hole transport...
5.
Ha Y, Stetson C, Harvey S, Teeter G, Tremolet de Villers B, Jiang C, et al.
ACS Appl Mater Interfaces
. 2020 Oct;
12(44):49563-49573.
PMID: 33094999
A trace amount of water in an electrolyte is one of the factors detrimental to the electrochemical performance of silicon (Si)-based lithium-ion batteries that adversely affect the formation and evolution...
6.
Yang J, Maughan A, Teeter G, Tremolet de Villers B, Bak S, Han S
ChemSusChem
. 2020 Sep;
13(22):5972-5982.
PMID: 32985100
Layered P2-type Na Mn Fe O cathode material is a promising candidate for next-generation sodium-ion batteries due to the economical and environmentally benign characteristics of Mn and Fe. The poor...
7.
Yin Y, Arca E, Wang L, Yang G, Schnabel M, Cao L, et al.
ACS Appl Mater Interfaces
. 2020 May;
12(23):26593-26600.
PMID: 32412232
A stable solid electrolyte interphase (SEI) has been proven to be a key enabler to most advanced battery chemistries, where the reactivity between the electrolyte and the anode operating beyond...
8.
Schnabel M, Harvey S, Arca E, Stetson C, Teeter G, Ban C, et al.
ACS Appl Mater Interfaces
. 2020 May;
12(24):27017-27028.
PMID: 32407075
Silicon is a promising anode material for lithium-ion batteries because of its high capacity, but its widespread adoption has been hampered by a low cycle life arising from mechanical failure...
9.
Delluva A, Dudoff J, Teeter G, Holewinski A
ACS Appl Mater Interfaces
. 2020 May;
12(22):24992-24999.
PMID: 32368893
Solid-state lithium-ion batteries are a hopeful successor to traditional Li-ion cells that use liquid electrolytes. While a growing body of work has characterized the interfaces between various solid electrolytes and...
10.
Han S, Wood K, Stetson C, Norman A, Brumbach M, Coyle J, et al.
ACS Appl Mater Interfaces
. 2019 Nov;
11(50):46993-47002.
PMID: 31738043
Because of the complexity, high reactivity, and continuous evolution of the silicon-electrolyte interphase (SiEI), "individual" constituents of the SiEI were investigated to understand their physical, electrochemical, and mechanical properties. For...