open access publication

Article, 2024

A Computational Multiscale Modeling Method for Nanosilver-Sintered Joints with Stochastically Distributed Voids

Journal of Electronic Materials, ISSN 1543-186X, 0361-5235, Volume 53, 5, Pages 2437-2454, 10.1007/s11664-024-10960-x

Contributors

Sun, Zhongchao 0000-0002-6378-6376 [1] Guo, Wendi 0000-0001-5832-8971 (Corresponding author) [1] Jørgensen, Asger Bjørn 0000-0003-2171-4531 [1]

Affiliations

  1. [1] Aalborg University
  2. [NORA names: AAU Aalborg University; University; Denmark; Europe, EU; Nordic; OECD]

Abstract

A high power density is required in wide band gap power semiconductor packaging, which has led to the popularity of sintered nanosilver as an interconnecting material. However, affected by stochastically distributed voids in its microstructure, this material in practice exhibits instability leading to reduced reliability. In this paper, a computational multiscale modeling method is proposed to simulate the influence of micro-voids on macro-properties, providing an efficient tool to analyze the aforementioned problem. At the micro-scale, the three-parameter Weibull distribution of the equivalent Young’s modulus and the normal distribution of the equivalent Poisson’s ratio are captured by Monte Carlo-based finite element simulation on the reconstructed stochastic representative elements, where the density and distribution morphology of micro-voids are taken into consideration. At the macro-scale, the effect of the microscopic voids is transferred through a random sampling process to construct the multiscale model. The effectiveness and validity of the proposed method are verified through experimental case studies involving the modeling of nanosilver-sintered joints sintered at temperatures of 275°C and 300°C. In addition, the effects of the sintering temperature on the dispersion of the micro-voids, the distribution fluctuation of the constitutive parameters, and the mechanical properties are also discussed based on numerical and experimental results.Graphical Abstract

Keywords

Distributed Morphology, Monte, Poisson, Poisson's ratio, Weibull distribution, Young's modulus, case study, computer, constitutive parameters, density, dispersion, distribution, distribution fluctuation, effect, efficient tool, element simulations, elements, equivalent Young’s modulus, experimental case study, experimental results, finite element simulations, fluctuations, influence, instability, joints, macro-properties, macro-scale, materials, mechanical properties, method, micro-scale, micro-voids, microscopic voids, microstructure, model, modeling method, modulus, multiscale model, multiscale modeling method, nanosilver, normal distribution, parameters, practice, problem, process, properties, random sampling process, ratio, reduced reliability, reliability, representative elements, results, sampling process, simulation, sintered nanosilver, sintering, sintering temperature, stochasticity, study, temperature, three-parameter Weibull distribution, tools, validity, voids

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