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Thomas J Kempa

Explore the profile of Thomas J Kempa including associated specialties, affiliations and a list of published articles. Areas
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Articles 27
Citations 591
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Recent Articles
1.
Victorin J, Razpopov A, Higo T, Dziobek-Garrett R, Kempa T, Nakatsuji S, et al.
Sci Rep . 2024 Nov; 14(1):28040. PMID: 39543262
Two-dimensional (2D) van der Waals (vdW) materials have been an exciting area of research ever since scientists first isolated a single layer of graphene. Single layer magnetic materials can provide...
2.
Sliwa M, Zhang H, Gao J, Stephens B, Patera A, Raciti D, et al.
Nano Lett . 2024 Oct; 24(44):13911-13918. PMID: 39441978
Multimetallic nanoalloy catalysts have attracted considerable interest for enhancing the efficiency and selectivity of many electrochemically driven chemical processes. However, the preparation of homogeneous bimetallic alloy nanoparticles remains a challenge....
3.
Dziobek-Garrett R, Kempa T
J Chem Phys . 2024 May; 160(20). PMID: 38804485
Van der Waals heterostructures (vdWHs) of vertically stacked two-dimensional (2D) atomic crystals have been used to elicit intriguing phenomena stemming from strong electronic correlations, magnetic textures, and interlayer excitons spawned...
4.
Dziobek-Garrett R, Hilliard S, Sriramineni S, Ambrozaite O, Zhu Y, Hudak B, et al.
ACS Nanosci Au . 2023 Dec; 3(6):441-450. PMID: 38144700
Chemical synthesis is a compelling alternative to top-down fabrication for controlling the size, shape, and composition of two-dimensional (2D) crystals. Precision tuning of the 2D crystal structure has broad implications...
5.
Dziobek-Garrett R, Imperiale C, Wilson M, Kempa T
Nano Lett . 2023 May; 23(11):4837-4843. PMID: 37191568
Energy transfer processes may be engineered in van der Waals heterostructures by taking advantage of the atomically abrupt, Å-scale, and topologically tailorable interfaces within them. Here, we prepare heterostructures comprised...
6.
Lei Y, Zhang T, Lin Y, Granzier-Nakajima T, Bepete G, Kowalczyk D, et al.
ACS Nanosci Au . 2022 Dec; 2(6):450-485. PMID: 36573124
Since the isolation of graphene in 2004, two-dimensional (2D) materials research has rapidly evolved into an entire subdiscipline in the physical sciences with a wide range of emergent applications. The...
7.
Li M, Claire F, Solomos M, Tenney S, Ivanov S, Siegler M, et al.
RSC Adv . 2022 May; 9(29):16492-16495. PMID: 35516379
A growing focus on the use of coordination polymers for active device applications motivates the search for candidate materials with integrated and optimized charge transport modes. We show herein the...
8.
Claire F, Solomos M, Kim J, Wang G, Siegler M, Crommie M, et al.
Nat Commun . 2020 Nov; 11(1):5524. PMID: 33139701
The incorporation of metal-organic frameworks into advanced devices remains a desirable goal, but progress is hindered by difficulties in preparing large crystalline metal-organic framework films with suitable electronic performance. We...
9.
Chowdhury T, Sadler E, Kempa T
Chem Rev . 2020 Sep; 120(22):12563-12591. PMID: 32960576
This review discusses recent advances and future research priorities in the transition-metal dichalcogenide (TMD) field. While the community has witnessed tremendous advances through research conducted on two-dimensional (2D) TMD crystals,...
10.
Chowdhury T, Kim J, Sadler E, Li C, Lee S, Jo K, et al.
Nat Nanotechnol . 2019 Nov; 15(1):29-34. PMID: 31740793
Two-dimensional transition-metal dichalcogenide (TMD) crystals are a versatile platform for optoelectronic, catalytic and quantum device studies. However, the ability to tailor their physical properties through explicit synthetic control of their...