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marked decrease » marked increase (Expand Search)
we decrease » _ decrease (Expand Search), a decrease (Expand Search), nn decrease (Expand Search)
li we » li wen (Expand Search), i we (Expand Search)
marked decrease » marked increase (Expand Search)
we decrease » _ decrease (Expand Search), a decrease (Expand Search), nn decrease (Expand Search)
li we » li wen (Expand Search), i we (Expand Search)
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LiMMCov user interface.
Published 2025“…To address this challenge, we introduce LiMMCov, an interactive app that uniquely integrates time-series concepts into the process of covariance structure selection. …”
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Influence of Internal Interfaces on the Structure and Dynamics of IL-Based Electrolytes Confined in a Metal–Organic Framework
Published 2025“…This study investigates how interactions between different ionic liquid-based electrolytes and the metal–organic framework ZIF-8 influence the coordination and dynamics of Li<sup>+</sup> in confinement. To this end, we examine five different ionic liquids, varying the chemical nature of the cation. …”
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Influence of Internal Interfaces on the Structure and Dynamics of IL-Based Electrolytes Confined in a Metal–Organic Framework
Published 2025“…This study investigates how interactions between different ionic liquid-based electrolytes and the metal–organic framework ZIF-8 influence the coordination and dynamics of Li<sup>+</sup> in confinement. To this end, we examine five different ionic liquids, varying the chemical nature of the cation. …”
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Structure and working principle of LI-YOLOv8.
Published 2025“…<div><p>In the domain of remote sensing image small target detection, challenges such as difficulties in extracting features of small targets, complex backgrounds that easily lead to confusion with targets, and high computational complexity with significant resource consumption are prevalent. We propose a lightweight small target detection algorithm for remote sensing images that combines GSConv and PConv, named LI-YOLOv8. …”
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Room-Temperature ECAP of Zn–Li–Mn Alloys: Mechanics, Corrosion, and Osteogenesis
Published 2025“…<p dir="ltr"><a href="" target="_blank">Biodegradable zinc is a promising base metal for temporary orthopedic fixation, yet insufficient strength has limited use at load-bearing sites. We designed a Zn–Li–Mn system and refined its microstructure by equal-channel angular pressing (ECAP). …”
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Dimolybdenum Paddlewheel Complexes with Cation Binding Sites as Electrolyte Additives to Manipulate the Solid-Electrolyte Interphase at Lithium Metal Anodes
Published 2025“…Whereas previous studies employed either inorganic or organic additives, in this study, we report the first organometallic additive, Mo<sub>2</sub>(mea)<sub>4</sub> [<b>1</b>, mea = 2-(2-methoxyethoxy)acetate], a dimolybdenum paddlewheel complex that is stable under Li plating conditions and features cation binding sites in the second coordination sphere that promote reversible Li<sup>+</sup> coordination. …”
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Dimolybdenum Paddlewheel Complexes with Cation Binding Sites as Electrolyte Additives to Manipulate the Solid-Electrolyte Interphase at Lithium Metal Anodes
Published 2025“…Whereas previous studies employed either inorganic or organic additives, in this study, we report the first organometallic additive, Mo<sub>2</sub>(mea)<sub>4</sub> [<b>1</b>, mea = 2-(2-methoxyethoxy)acetate], a dimolybdenum paddlewheel complex that is stable under Li plating conditions and features cation binding sites in the second coordination sphere that promote reversible Li<sup>+</sup> coordination. …”
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Dimolybdenum Paddlewheel Complexes with Cation Binding Sites as Electrolyte Additives to Manipulate the Solid-Electrolyte Interphase at Lithium Metal Anodes
Published 2025“…Whereas previous studies employed either inorganic or organic additives, in this study, we report the first organometallic additive, Mo<sub>2</sub>(mea)<sub>4</sub> [<b>1</b>, mea = 2-(2-methoxyethoxy)acetate], a dimolybdenum paddlewheel complex that is stable under Li plating conditions and features cation binding sites in the second coordination sphere that promote reversible Li<sup>+</sup> coordination. …”
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Dimolybdenum Paddlewheel Complexes with Cation Binding Sites as Electrolyte Additives to Manipulate the Solid-Electrolyte Interphase at Lithium Metal Anodes
Published 2025“…Whereas previous studies employed either inorganic or organic additives, in this study, we report the first organometallic additive, Mo<sub>2</sub>(mea)<sub>4</sub> [<b>1</b>, mea = 2-(2-methoxyethoxy)acetate], a dimolybdenum paddlewheel complex that is stable under Li plating conditions and features cation binding sites in the second coordination sphere that promote reversible Li<sup>+</sup> coordination. …”
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Dimolybdenum Paddlewheel Complexes with Cation Binding Sites as Electrolyte Additives to Manipulate the Solid-Electrolyte Interphase at Lithium Metal Anodes
Published 2025“…Whereas previous studies employed either inorganic or organic additives, in this study, we report the first organometallic additive, Mo<sub>2</sub>(mea)<sub>4</sub> [<b>1</b>, mea = 2-(2-methoxyethoxy)acetate], a dimolybdenum paddlewheel complex that is stable under Li plating conditions and features cation binding sites in the second coordination sphere that promote reversible Li<sup>+</sup> coordination. …”
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Data Sheet 1_Addressing energy challenges: sustainable nano-ceramic electrolytes for solid-state lithium batteries by green chemistry.docx
Published 2025“…Utilizing green chemistry principles, we synthesized composite electrolytes based on Li₃InCl₆, doped with fluorine (F), cerium (Ce), and molybdenum (Mo). …”
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