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Finite Element Method Based Performance Analysis of Piezoelectric Materials for Nanogenerator Applications

机译:基于有限元方法对纳米液应用的压电材料性能分析

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Demonstrated through this work is the analysis of piezoelectric behavior of wide band gap materials like ZnO, CdS, BaTiO_3, LiNbO_3, AlN and PZT for potential application in nano generators. Nano rods of finite dimensions in the form of perfect cylinders were modeled with conventional PZT used in energy harvesting applications and the alternatives like ZnO, BaTiO_3, ZnO, AlN, LiNbO_3 and CdS whose performance potential and advantages are explained through this work on the basis of analytical and simulation based approaches. Piezoelectric potentials of cylindrical nano rods with two different lengths i.e. 500nm and 600nm and varying diameters were analyzed and the results showed perfect alignment in both numerical and simulation with a minor variation of 7 percent. The potential application of these nano wire systems are in voltage controlled devices like BJT's and FET's, energy harvesting systems and biomedical sensing applications. Comsol Multi physics has been used to calculate the bending of nano rods by applying Finite Element Method (FEM). The results obtained shows that the generated electric potential in the nano wire is independent of the length of the rod along z-axis and the surface piezoelectric potential generated is directly proportional to the displacement of the nanowire in the direction of force and inversely proportional to the cube of its length-to-diameter ratio. The piezoelectric potential generated due to the application of 100nN force on one end of the rod with the other end fixed is ~±2.3V which is suitable to drive gate voltages of various transistors and to be used in sensing applications.
机译:通过这项工作证明是ZnO,Cds,Batio_3,Linbo_3,AlN和PZT等宽带隙材料的压电行为分析,用于纳米发电机的潜在应用。用完美圆柱体形式的有限尺寸的纳米棒用常规的PZT模拟,用于能量收集应用以及ZnO,Batio_3,ZnO,ALN,LINBO_3和CD等替代品通过这项工作来解释的基础上的性能潜力和优点基于分析和模拟的方法。分析了两种不同长度的圆柱形纳米棒的压电电位,即500nm和600nm和不同的直径,结果表明在数值和模拟中具有较小变化的7%的完美对准。这些纳米线系统的潜在应用是BJT和FET的电压控制装置,能量收集系统和生物医学传感应用。 COMSOL多物理学通过应用有限元方法(FEM)来计算纳米棒的弯曲。获得的结果表明,纳米线中的产生电位与沿Z轴的杆的长度无关,并且所产生的表面压电电位与纳米线的位移成比例在力方向上和成反比立方体的长度直径比。由于杆的一端在杆的一端施加而产生的压电电位,其另一端固定为〜±2.3V,其适于驱动各种晶体管的栅极电压并用于感测应用。

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