Jurgen Janek
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Explore the profile of Jurgen Janek including associated specialties, affiliations and a list of published articles.
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Articles
144
Citations
1061
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Recent Articles
1.
Zhao W, Zhang R, Ren F, Karger L, Dreyer S, Lin J, et al.
ACS Nano
. 2025 Jan;
19(9):8595-8607.
PMID: 39879526
Improving interfacial stability between cathode active material (CAM) and solid electrolyte (SE) is vital for developing high-performance all-solid-state batteries (ASSBs), with compatibility issues among the cell components representing a major...
2.
Song H, Munch K, Liu X, Shen K, Zhang R, Weintraut T, et al.
Nature
. 2025 Jan;
637(8047):846-853.
PMID: 39814898
With promises for high specific energy, high safety and low cost, the all-solid-state lithium-sulfur battery (ASSLSB) is ideal for next-generation energy storage. However, the poor rate performance and short cycle...
3.
Huo H, Bai Y, Benz S, Weintraut T, Wang S, Henss A, et al.
Adv Mater
. 2024 Dec;
37(7):e2415006.
PMID: 39703118
Silicon is a promising negative electrode material for solid-state batteries (SSBs) due to its high specific capacity and ability to prevent lithium dendrite formation. However, SSBs with silicon electrodes currently...
4.
Merola L, Singh V, Palmer M, Eckhardt J, Benz S, Fuchs T, et al.
ACS Appl Mater Interfaces
. 2024 Sep;
16(40):54847-54863.
PMID: 39316658
Developing solid-state batteries (SSB) with a lithium metal electrode (LME) using only one type of solid electrolyte (SE) is a significant challenge since no SE fits all the requirements imposed...
5.
Fuchs T, Ortmann T, Becker J, Haslam C, Ziegler M, Singh V, et al.
Nat Mater
. 2024 Sep;
23(12):1678-1685.
PMID: 39313556
'Anode-free' or, more fittingly, metal reservoir-free cells could drastically improve current solid-state battery technology by achieving higher energy density, improving safety and simplifying manufacturing. Various strategies have been reported so...
6.
Kremer S, Rekers R, Sigar U, Becker J, Schubert J, Eckhardt J, et al.
ACS Appl Mater Interfaces
. 2024 Aug;
16(33):44236-44248.
PMID: 39121451
Hybrid battery cells that combine a garnet-type LiLaZrO (LLZO) solid electrolyte with other solid, polymer or liquid electrolytes are increasingly investigated. In such cells with layered electrolytes, ensuring a low-resistive...
7.
Kunz S, Bui T, Emmel D, Janek J, Henkensmeier D, Schroder D
ChemSusChem
. 2024 May;
17(21):e202400550.
PMID: 38772010
Non-aqueous organic redox flow batteries (RFB) utilizing verdazyl radicals are increasingly explored as energy storage technology. Verdazyl cations in RFBs with acidic aqueous electrolytes, however, have not been investigated yet....
8.
Kreissl J, Dang H, Mogwitz B, Rohnke M, Schroder D, Janek J
ACS Appl Mater Interfaces
. 2024 May;
16(20):26195-26208.
PMID: 38722801
To complement or outperform lithium-ion batteries with liquid electrolyte as energy storage devices, a high-energy as well as high-power anode material must be used in solid-state batteries. An overlooked class...
9.
Lin J, Schaller M, Indris S, Baran V, Gautam A, Janek J, et al.
Angew Chem Int Ed Engl
. 2024 May;
63(30):e202404874.
PMID: 38709977
The development of improved solid electrolytes (SEs) plays a crucial role in the advancement of bulk-type solid-state battery (SSB) technologies. In recent years, multicomponent or high-entropy SEs are gaining increased...
10.
Goodwin L, Ziegler M, Till P, Nazer N, Adelhelm P, Zeier W, et al.
ACS Appl Mater Interfaces
. 2024 Apr;
16(15):19792-19805.
PMID: 38572658
Sodium all-solid-state batteries may become a novel storage technology overcoming the safety and energy density issues of (liquid-based) sodium ion batteries at low cost and good resource availability. However, compared...