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[1] Quantitative Deposition Enables Dual Passivation Synergy for Efficient Inverted Perovskite Solar Cells.Small,2026,22(39):e73886.
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[2] Inorganic‐Organic Synergistic Passivation via Grain Boundary‐Selective ALD‐Al2O3 and Piperazine‐1, 4‐diium Iodide for Efficient Wide‐Bandgap Perovskite Solar Cells.Advanced Functional Materials,2026,36(48):e75644.
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[3] Quantified passivator deposition via drop-on-demand inkjet printing for high-efficiency inverted perovskite solar cells.Chemical Engineering Journal,2026,529,173008.
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[4] Spectral ultra-stable perovskite quantum dots for pure-blue light-emitting diodes.Chemical Engineering Journal,2025,519,165202.
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[5] Precise Control of Lead Halide and Ammonium Salt Stoichiometric Ratios for Efficient Perovskite Solar Cells.Advanced Science,2025,12,2416634.
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[6] Quantitative Surface Passivation Through Drop‐on‐Demand Inkjet Printing Enables Highly Efficient Perovskite Solar Cells.Advanced Energy Materials,2024,14,2400549.
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[7] Pure Chloride 2D/3D Heterostructure Passivation for Efficient and Stable Perovskite Solar Cells.Advanced Energy and Sustainability Research,2023,4,2200189.
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[8] Inorganic CsPbI2Br halide perovskites: from fundamentals to solar cell optimizations.Energy & Environmental Science,2023,16,862-888.
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[9] Ink Engineering in Blade‐Coating Large‐Area Perovskite Solar Cells.Advanced Energy Materials,2022,12,2200975.
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[10] Stability Bounds for Micron Scale Ag Conductor Lines Produced by Electrohydrodynamic Inkjet Printing.ACS applied materials & interfaces,2022,14,39601-39609.