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It has widely been recognized that delivering the temporal fine structure information to the cochlear implant (CI) users might significantly improve their speech perception performance and lead a breakthrough for the CI design.
Estimated prevalence (categorical variables) or means (continuous numeric variables), intracluster correlation coefficients (ICC), their respective 95% confidence intervals (CI), design effects (Deff) and mean cluster size of each variable were calculated.
Interest in student conception of experimentation inspired the development of a fully validated 14-question inventory on experimental design in biology (BEDCI) by following established best practices in concept inventory (CI) design.
Estimated prevalences of each dichotomized variable, intraclass correlation coefficients (ICC), their respective 95% confidence intervals (95% CI), design effects (DEFF) and mean cluster size for each variable were calculated.
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Taken together, our results shed light on the rational design of CuS nanomaterials to minimize toxicity, thus providing a useful guideline in selecting CuS as the photothermal agent for cancer therapy.
In this study, we report the design of CuS-based, light-induced transformative nano-CpG systems that combine photothermal ablation with immunotherapy.
This is the first report of successful treatment of H3PO4 on the surface of CuS CEs for designing a high-performance QDSSCs with improved photovoltaic properties.
Focusing on the ci female's unattractiveness, we designed two sets of experiments to further dissect this phenomenon.
Two hydrotropes such as sodium salicylate (Na-Sal) and sodium cumene sulphonate (Na-CuS) were studied using Box-Behnken experiment design.
A sequential fabrication approach for metal sulfide photocatalysts consisting of three components (ZnS, CuS, and CdS) is designed in order to achieve efficient charge flows by introducing CuS and CdS on ZnS surfaces.
Taking the advantage of the high peroxidase-like activity, the as-prepared CuS-MMT nanocomposites were designed to establish a novel colorimetric sensor for H2O2 with a wide linear range from 3×× 10−5 to 2 × 10−4 M.
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