Paul Stradins
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Explore the profile of Paul Stradins including associated specialties, affiliations and a list of published articles.
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Articles
14
Citations
85
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Recent Articles
1.
Chen K, Johnston S, Taylor P, Mulder D, Guthrey H, Nemeth W, et al.
ACS Appl Mater Interfaces
. 2024 Apr;
16(17):22736-22746.
PMID: 38650370
In monocrystalline Si (c-Si) solar cells, identification and mitigation of bulk defects are crucial to achieving a high photoconversion efficiency. To spectroscopically detect defects in the c-Si bulk, it is...
2.
Guthrey H, Lima Anderson CL C, Kale A, Nemeth W, Page M, Agarwal S, et al.
ACS Appl Mater Interfaces
. 2020 Dec;
12(50):55737-55745.
PMID: 33259180
High-efficiency silicon solar cells rely on some form of passivating contact structure to reduce recombination losses at the crystalline silicon surface and losses at the metal/Si contact interface. One such...
3.
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...
4.
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...
5.
Ha Y, Tremolet de Villers B, Li Z, Xu Y, Stradins P, Zakutayev A, et al.
J Phys Chem Lett
. 2019 Dec;
11(1):286-291.
PMID: 31845806
We present a novel spectroscopic technique for in situ Raman microscopy studies of battery electrodes. By creating nanostructures on a copper mesh current collector, we were able to utilize surface-enhanced...
6.
Kale A, Nemeth W, Guthrey H, Nanayakkara S, LaSalvia V, Theingi S, et al.
ACS Appl Mater Interfaces
. 2019 Oct;
11(45):42021-42031.
PMID: 31610646
High-efficiency crystalline silicon (Si) solar cells require textured surfaces for efficient light trapping. However, passivation of a textured surface to reduce carrier recombination is difficult. Here, we relate the electrical...
7.
Klein T, Lee B, Schnabel M, Warren E, Stradins P, Tamboli A, et al.
ACS Appl Mater Interfaces
. 2018 Feb;
10(9):8086-8091.
PMID: 29441786
Transparent conductive adhesives (TCAs) can enable conductivity between two substrates, which is useful for a wide range of electronic devices. Here, we have developed a TCA composed of a polymer-particle...
8.
Liu Y, Stradins P, Wei S
Sci Adv
. 2016 May;
2(4):e1600069.
PMID: 27152360
Two-dimensional (2D) semiconductors have shown great potential for electronic and optoelectronic applications. However, their development is limited by a large Schottky barrier (SB) at the metal-semiconductor junction (MSJ), which is...
9.
Lee B, Luo J, Neale N, Beard M, Hiller D, Zacharias M, et al.
Nano Lett
. 2016 Feb;
16(3):1583-9.
PMID: 26898670
Comparison of the measured absolute absorption cross section on a per Si atom basis of plasma-synthesized Si nanocrystals (NCs) with the absorption of bulk crystalline Si shows that while near...
10.
Chaukulkar R, de Peuter K, Stradins P, Pylypenko S, Bell J, Yang Y, et al.
ACS Appl Mater Interfaces
. 2014 Oct;
6(21):19026-34.
PMID: 25275941
We have developed a novel single-step technique based on nonthermal, radio frequency (rf) plasmas to synthesize sub-10 nm, core-shell, carbon-coated crystalline Si (c-Si) nanoparticles (NPs) for potential application in Li(+)...