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10 merged results for "Chalcogenide Semiconductor Thin Films"

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  1. Large-Scale Growth of Self-Poled Ferroelectric Rashba Semiconductor α-GeTe(111) Thin Films: A Crucial Step Towards Future CMOS-Compatible Ferroelectric Spintronic Devices.

    Lagrave J, Bernier N, Jalabert T, Brûlé Y · 2026 · Advanced science (Weinheim, Baden-Wurttemberg, Germany)

    limited evidence Transparent signal score 45/100 · policy 1.0.0

    Found in pubmed · DOI 10.1002/advs.75711

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  2. Harnessing Semiconductor Metal Chalcogenide Zr-Doped SnS(2) Thin Films for Advanced Oxidation and Environmental Remediation: Photoremediation of Antibiotic Ciprofloxacin Pollution.

    Lodhi KW, Fazal T, Shah M, Ismail B · 2026 · Luminescence : the journal of biological and chemical luminescence

    limited evidence Transparent signal score 43/100 · policy 1.0.0

    Found in pubmed · DOI 10.1002/bio.70492

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  3. Robust Material Properties in Epitaxial In(2)Te(3) Thin Films across Varying Thicknesses.

    Buchta M, Hoff F, Bothe L, Penner N · 2025 · Small (Weinheim an der Bergstrasse, Germany)

    limited evidence Transparent signal score 45/100 · policy 1.0.0

    Found in pubmed · DOI 10.1002/smll.202508738

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  4. Combinatorial Synthesis of BaCu(2)Se(2) Thin Films: Effect of Composition on Crystal Structure and Optoelectronic Properties.

    Rusu M, Márquez JA, Hempel H, Gurieva G · 2026 · Small (Weinheim an der Bergstrasse, Germany)

    limited evidence Transparent signal score 45/100 · policy 1.0.0

    Found in pubmed · DOI 10.1002/smll.73267

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  5. Mitigation of Structural Defects during the Growth of 2D van der Waals Chalcogenides by Molecular Beam Epitaxy.

    Zhang Q, Hilse M, Law S · 2025 · Small methods

    limited evidence Transparent signal score 45/100 · policy 1.0.0

    Found in pubmed · DOI 10.1002/smtd.202501236

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    • cautionMetadata completeness: 5 of 6 scored descriptive metadata groups are present; missing fields increase uncertainty. Source: Normalized work metadata; license: Caller-provided; provenance license not supplied to scorer
  6. A New Synthetic Method for HfS(2) Thin Films Using MOCVD.

    Glauber JP, Boysen N, Baspinar S, Kostka A · 2026 · ACS applied materials & interfaces

    limited evidence Transparent signal score 43/100 · policy 1.0.0

    Found in pubmed · DOI 10.1021/acsami.5c20685

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  7. Interface engineering: a step towards device integration of chalcogenide perovskites.

    Vincent KC, Agarwal S, Ruiz J, Rangel Miranda M · 2026 · Faraday discussions

    limited evidence Transparent signal score 43/100 · policy 1.0.0

    Found in pubmed · DOI 10.1039/d6fd00018e

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  8. Tunable bandgap of copper sulfide via cation exchange as a p-type transparent electrode.

    Kang S, Pyo J, Jung M, Park S · 2026 · Nanoscale

    limited evidence Transparent signal score 43/100 · policy 1.0.0

    Found in pubmed · DOI 10.1039/d6nr02124g

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  9. Ceramic-Processing Perspectives on Colloidal CIGS and CZTSSe Thin-Film Solar Absorbers: Green-Body Formation, Reactive Chalcogenization, and Defect Engineering.

    Hsiang HI · 2026 · Materials (Basel, Switzerland)

    limited evidence Transparent signal score 45/100 · policy 1.0.0

    Found in pubmed · DOI 10.3390/ma19142989

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  10. Influence of RF Sputtering Pressure and Power on the Microstructure of Sb Thin Films.

    Uc-Canche S, Camacho-Espinosa E, Loeza-Poot M, Mis-Fernández R · 2026 · Materials (Basel, Switzerland)

    limited evidence Transparent signal score 45/100 · policy 1.0.0

    Found in pubmed · DOI 10.3390/ma19143119

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