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Super Dielectric Material Based Capacitors: Punched Membrane/Gel

机译:基于超级介电材料的电容器:冲孔膜/凝胶

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Extensive testing showed, as predicted, that punched membranes, filled with a gel containing aqueous salt solutions, behave as superdielectric materials (SDM). Punched membrane superdielectrics employed herein consisted of a commercial cellulose based membrane material, Celgard 16 mu thick, a material frequently used as a separator material in supercapacitors, into which macroscopic holes (ca. 2.5 mm) were punched with a laser cutter, and the holes subsequently filled with a gel-like material composed of fumed silica, NaCl and water. The gross dielectric constants measured, generally 10(5), and the energy densities, 40 J/cm(3) during slow discharge, were in the range expected for superdielectric materials. The measured capacitance and energy density tracked the number of holes punched/area filled with the dielectric gel. Also, the observed power law decrease in all parameters including energy, power and capacitance, followed the same trends observed in other classes of SDM. Control studies included testing dielectrics composed of Celgard into which no holes were punched, but the SDM gel spread, also produced values consistent with the SDM model: no measurable capacitance using the standard protocol. Finally, the values measured suggest these materials rival the energy density of some common battery types at low discharge rates, and surpass the best commercial supercapacitors at low discharge rates.
机译:如预测的那样,填充有含水盐溶液的凝胶的穿孔膜,表现为超电极材料(SDM)。本文所用的穿孔膜超级电解由商业纤维素的膜材料组成,Celgard16μ厚,常用作为超级电容器中的分离材料的材料,其中用激光切割器冲压宏观孔(2.5mm),以及孔随后填充凝胶状材料,其由气相二氧化硅,NaCl和水组成。大致介电常数,通常是& 10(5),和能量密度,&在缓慢放电期间40 J / cm(3),在超电极材料的范围内。测量的电容和能量密度跟踪填充有介电凝胶的孔的孔数量。此外,观察到的电力法减少了包括能量,功率和电容的所有参数,遵循其他类别的SDM中观察到的相同趋势。控制研究包括测试由Celgard组成的电介质,其中没有冲压孔,但SDM凝胶扩散,也产生与SDM模型一致的值:没有使用标准协议的可测量电容。最后,测量的值表明这些材料在低放电速率下媲美一些常见电池类型的能量密度,并以低放电速率超过最佳商业超级电容器。

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