Exact(12)
All-solution processed solar cells demonstrated a power conversion efficiency of 1.94%.
SWEPT demonstrated a power coefficient of 32% and overall efficiency of 21% at its rated wind speed.
The best solar cell adopting inorganic nano-phase as the electron acceptor demonstrated a power conversion efficiency exceeding 3% using CdSe tetrapods [3].
Under optimum conditions, the CdS/CdSe co-sensitized QDSSC demonstrated a power conversion efficiency (PCE) of 2.40% under 100 mW/cm2 illumination of simulate sunlight.
In 2009, Miyasaka et al. used MAPbI3 and MAPbBr3 as light harvesters for the first time in dye-sensitized solar cell structure, in which MAPbI3 deposited on nanocrystalline TiO2 surface demonstrated a power conversion efficiency (PCE) of 3.8 % [4].
With annealing at 100 °C for 15 min, P4/P3HT blends demonstrated a power conversion efficiency of up to 1.10% with a short circuit current (JSC) of 2.9 mancm2, an open circuit voltage (VOC) 0.92 V, and a fill factor (FF) of 0.40, illustrating that PTACs are attractive candidates for solar cells.
Similar(48)
Wuchty (2001) demonstrated a power-law distribution on the co-occurrence of protein domains.
A prototype CMOS voltage reference demonstrates a power supply rejection ratio (PSRR) of 50 dB.
Simulations demonstrate a power saving range of 40 70%, which is highly dependent on dimension and register size, all with a variable area cost from −2% up to 9%.
Polymer solar cell based on PCzTPA-CN as donor and PC70BM as acceptor demonstrates a power conversion efficiency of 0.81% with a high Voc of 0.93 V.
However, our results demonstrate a power law in spike avalanches in the awake, but not anesthetized state, within our imaging frame.
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