Search alternatives:
linear decrease » linear increase (Expand Search)
larger decrease » marked decrease (Expand Search)
large decrease » marked decrease (Expand Search), large increases (Expand Search), large degree (Expand Search)
mean decrease » a decrease (Expand Search)
a large » _ large (Expand Search)
linear decrease » linear increase (Expand Search)
larger decrease » marked decrease (Expand Search)
large decrease » marked decrease (Expand Search), large increases (Expand Search), large degree (Expand Search)
mean decrease » a decrease (Expand Search)
a large » _ large (Expand Search)
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OPJ: Origin data for Fig 9a.
Published 2024“…<div><p>In hot dry regions, photovoltaic modules are exposed to excessive temperatures, which leads to a drop in performance and the risk of overheating. …”
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11810
OPJ: Origin data for Fig 7a.
Published 2024“…<div><p>In hot dry regions, photovoltaic modules are exposed to excessive temperatures, which leads to a drop in performance and the risk of overheating. …”
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11811
OPJ: Origin data for Fig 3a.
Published 2024“…<div><p>In hot dry regions, photovoltaic modules are exposed to excessive temperatures, which leads to a drop in performance and the risk of overheating. …”
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11812
OPJ: Origin data for Fig 6a.
Published 2024“…<div><p>In hot dry regions, photovoltaic modules are exposed to excessive temperatures, which leads to a drop in performance and the risk of overheating. …”
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11813
OPJ: Origin data for Fig 8a.
Published 2024“…<div><p>In hot dry regions, photovoltaic modules are exposed to excessive temperatures, which leads to a drop in performance and the risk of overheating. …”
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11814
OPJ: Origin data for Fig 2a.
Published 2024“…<div><p>In hot dry regions, photovoltaic modules are exposed to excessive temperatures, which leads to a drop in performance and the risk of overheating. …”
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11815
OPJ: Origin data for Fig 4a.
Published 2024“…<div><p>In hot dry regions, photovoltaic modules are exposed to excessive temperatures, which leads to a drop in performance and the risk of overheating. …”
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11817
Data_Sheet_1_An ω-3, but Not an ω-6 Polyunsaturated Fatty Acid Decreases Membrane Dipole Potential and Stimulates Endo-Lysosomal Escape of Penetratin.PDF
Published 2021“…Here, we describe a novel emission ratiometric flow cytometry method based on F66, a 3-hydroxiflavon derivative, and demonstrate that 6-ketocholestanol, cholesterol and 7-dehydrocholesterol, saturated stearic acid (SA) and ω-6 γ-linolenic acid (GLA) increase, while ω-3 α-linolenic acid (ALA) decreases the DP. …”
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