高压直喷侧功率器件的阶跃漂移掺杂剖面

R. Sunkavalli, A. Tamba, B. J. Baliga
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引用次数: 28

摘要

高压横向电源器件的单元间距决定了许多重要的器件性能指标,如芯片面积、导通电压降和最大可控电流。由于侧向功率器件的单元间距是由支撑高电压所需的较长的漂移区长度决定的,因此对于给定击穿电压的器件,希望在漂移区具有均匀的侧向电场分布,以使漂移区长度最小。一般认为,随着漂移区长度的增加,直插式RESURF器件的击穿电压呈线性增加,直至达到与垂直击穿相关的极限。然而,对DI PIN二极管击穿的二维数值模拟表明,在漂移区域的电场分布并不理想。为使直流电动力器件在漂移区获得更均匀的电场分布,研究了两种技术。一种技术是在漂移区域上使用SIPOS场板来均匀扩散电场。另一种技术涉及调整漂移区掺杂剖面,使漂移区电荷从阳极端到阴极端线性增加。
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Step drift doping profile for high voltage DI lateral power devices
The cell pitch of high voltage lateral power devices determines many important device performance specifications such as the area of the chip, on-state voltage drop and the maximum controllable current. Since the cell pitch of lateral power devices is determined by the long drift region lengths required to support high voltages in accordance with the RESURF principle, it is desirable to have a uniform lateral electric field distribution in the drift region to minimize the drift region length for a device with a given breakdown voltage. It is generally assumed that the breakdown voltage of DI RESURF devices scales up linearly with increasing drift region length till a limit associated with vertical breakdown is reached. However, 2D numerical simulations of the breakdown of DI PIN diodes indicate non-ideal electric field distribution in the drift region. Two techniques have been studied for achieving a more uniform electric field distribution in the drift region for DI lateral power devices. One technique involves the use of a SIPOS field plate over the drift region to spread the electric field uniformly. The other technique involves tailoring the drift region doping profile, so that the drift region charge increases linearly from the anode end to the cathode end.
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