Electrochemical Phase Engineering of Li-Ti-P-O Nanocomposite Thin Films

dc.contributor.authorFontecha, Daniela R.
dc.contributor.authorGomez, Osma
dc.contributor.authorKim, Nam Soo
dc.contributor.authorLee, Sang Bok
dc.contributor.authorRubloff, Gary W.
dc.contributor.authorGregorczyk, Keith E.
dc.date.accessioned2026-09-10T14:30:03Z
dc.date.issued2026
dc.description.abstractNanoscale materials processing advancements have enabled on-chip ionic devices like microbatteries, super capacitors, ion-gated transistors, etc. using standard semiconductor processes (such as atomic layer deposition - ALD) to develop electrochemically active thin films. However, challenges remain in understanding and controlling ionic and electronic transport in nanoscale systems. Nanoscale ionic systems that are tunable at multiple scales (chemical composition, phase distribution, and crystal structure) are critical in understanding how these parameters affect transport and materials properties. In this work we study a system with these qualities and introduce a lever - electrochemical phase engineering - to remove an electrochemically active crystalline phase (LiTi2(PO4)3 - LTP) that allows us to understand the effects of individual phases on ionic transport in a quaternary ALD nanocomposite. We use the Li-Ti-P-O nanocomposite developed by ALD, which consists of crystalline LTP, anatase TiO2 and an amorphous LTP matrix. Each phase contributes to Li+ ion storage at different redox potentials, and the crystalline LTP phases are structurally unstable below 0.5 V vs Li+/Li, allowing the electrochemical removal of the crystalline LTP phase to study its effects on ionic and electronic transport in the nanocomposite system. We demonstrate the Li-Ti-P-O materials system to be able to switch from high power (60 % capacity retention at an ultrafast charging rate of 200 C) to high capacity (1302 mAh/g at 1 C), making this an interesting material for thin film ionic devices, especially in applications where phase-selectivity provides an advantage.
dc.description.sponsorshipThis work was supported by the U.S. Department of Energy Office of Science, Basic Energy Sciences, under Grant DE-SC0021070, encompassing and emphasizing the synthesis of Li containing titanium phosphates with composition and structure varied through a dopant supercycle process and corresponding electrochemical analysis. D.R.F. was supported by the National Science Foundation Graduate Research Fellowship Program under Grant No. DGE 1840340. Any opinions, findings, and conclusions or recommendations expressed in this material are those of the author(s) and do not necessarily reflect the views of the National Science Foundation.
dc.identifierhttps://doi.org/10.13016/psut-zyeu
dc.identifier.citationDaniela R. Fontecha, Osma Gomez, Nam Soo Kim, Sang Bok Lee, Gary W. Rubloff, Keith E. Gregorczyk. "Electrochemical Phase Engineering of Li–Ti–P–O Nanocomposite Thin Films". ACS Applied Energy Materials. 2026. https://doi.org/10.1021/acsaem.6c01750
dc.identifier.urihttp://hdl.handle.net/1903/36063
dc.language.isoen_US
dc.publisherACS Applied Energy Materials
dc.relation.isAvailableAtA. James Clark School of Engineeringen_us
dc.relation.isAvailableAtMaterials Science & Engineeringen_us
dc.relation.isAvailableAtDigital Repository at the University of Marylanden_us
dc.relation.isAvailableAtUniversity of Maryland (College Park, MD)en_us
dc.rightsAttribution 3.0 United Statesen
dc.rights.urihttp://creativecommons.org/licenses/by/3.0/us/
dc.subjectNanocomposite
dc.subjectNASICON LTP
dc.subjectOrthorhombic LTP
dc.subjectlithium titanium phosphate
dc.subjectanatase
dc.subjectThin Film Electrode
dc.subjectAtomic Layer Deposition
dc.subjectThin film battery electrode
dc.titleElectrochemical Phase Engineering of Li-Ti-P-O Nanocomposite Thin Films
dc.typeArticle
local.accessibility.acknowledgedtrue
local.equitableAccessSubmissionNo

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