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Embedding power semiconductor devices into printed circuit boards (PCB) provides several benefits compared to conventional packaging technologies. Integrating the semiconductor dies into the circuit board reduces the converter size. This results in short current loops, enabling low interconnection resistances and parasitic inductances. Both contribute to a higher system-level efficiency, as conduction and switching losses are reduced. Moreover, the use of thick Cu substrates allows efficient heat removal, due to a low thermal resistance. Therefore, PCB embedding has received a lot of attention in the power electronics community for more than a decade. This article aims to provide a comprehensive review of the scientific literature on the topic ranging from basic fabrication technology over module or system-level demonstrators for electrical and thermal testing to reliability studies. Performance indicators, such as the commutation loop inductance Lσ, the chip area independent thermal resistance Rth × Achip, allow a comparison of different approaches and benchmarking with conventional power modules. Several publications report stray inductances below 1 nH and chip area independent thermal resistances in the range of 20…30 mm²K/W.
PCB embedding is an attractive packaging technology for highly integrated future power systems. Electrical and thermal benefits and limitations are well understood, but only few publications focus on reliability. Here we are addressing high-humidity high temperature reverse bias (H3TRB) tests, which are performed to gain deeper understanding of the limitations of this technology. Cu filament growth is observed on both, PCB embedded samples and silicone potted reference samples. These filaments may form a conductive path and lead to an increased leakage current in blocking mode. Electrochemical corrosion of the Cu-plated guard ring is identified as root cause.
This work investigates a packaging solution for high voltage semiconductors (20 kV), allowing for a dramatic reduction in size and complexity of power electronics modules. The standard packaging structures typically introduce a competition between electrical insulation (which requires thick insulating layers) and thermal performance (where thin, high thermal conductivity layers are preferred). Here, we introduce a concept which addresses this competition and is based on direct cooling using dielectric liquid. Single-chip heatsinks are designed, optimized using computational fluid dynamics (CFD), built and tested.
This paper presents a novel approach to embed power semiconductor devices into a printed circuit board. Here, IGBTs and diodes with reinforced top side chip contact are used in an IGBT half bridge with 25 A / 1200 V rating. Thermal simulations highlight the improved thermal impedance caused by the reinforced top contact and the benefits of the insulated copper substrate compared to a commercial DBC-based reference module.
The fabrication process is discussed in detail and preliminary test results are presented. The results of the thermal characterization support the theoretical
considerations.
This work investigates a packaging solution for high power density semiconductors (> 200 W/cm 2), allowing for a dramatic reduction in size and complexity of power electronics modules. The multiple layers in standard packaging structures degrade the cooling efficiency due as they lengthen the path between dies and heatsinks. Here, we reduce the layer count by merging the ceramic substrate and the heat exchanger in a single part. CFD simulations and experimental validation are performed on a single-chip cooling packaging, and demonstrate a 10-20 % reduction in thermal resistance over more traditional cooling solutions.
Embedding power semiconductor devices in pre-packages may enable low-inductive power semiconductor module designs with superior thermal performance and reliability. However, it is crucial to understand mechanical stress formation due to the differences in thermal expansion of the materials used. This paper presents a systematic study of thermomechanical stresses in Si and SiC power semiconductor pre-packages based on PCB embedding or compression molding. The analysis is based on thermomechanical FEM simulations and complemented by passive thermal cycling of different test carrier designs. Patterning and CTE-matching of contacts are proven as strategies to minimize thermomechanical stress.
This paper presents design, fabrication, and analysis of a PCB embedded half-bridge. Here, a pre-package that contains a 100 V / 100 A MOSFET half bridge is fabricated and embedded into a converter level power PCB, allowing for two routing layers on top of the semiconductors. This enables to minimize the commutation loop inductance by placing a decoupling capacitor directly on top of the switches. Experimentally a parasitic inductance of 1.4 nH is deducted from the ringing frequency in switching experiments. The second design goal is an optimized thermal
performance. Both, simulation with ANSYS Icepak and experiments indicate a value of 1.77 K/W. Based on the results, a 12 V / 48 V bidirectional converter was implemented and operated with a maximum power of 620 W.
PCB embedding in combination with direct-bonded copper (DBC) substrates is an attractive approach for packaging of power semiconductors facilitating low-inductive designs while relying on a proven insulating material. However, the CTE mismatch of these materials could cause reliability issues. This study presents an initial reliability screening using simple IGBT prepackages with alumina-based DBC as test vehicles. After -40/150 °C temperature cycles, fracture of the substrate and the chip is observed, resulting in an increased on-state resistance. Literature data suggest that the substrate failure is independent from the embedding. To gain a deeper understanding of the limitations of the technology, further research with optimized DBC substrates is required.
PCB embedding is a novel and promising approach for packaging of power semiconductors. Due to the planar construction the technology enables lower conduction and switching losses, an increase switching frequency and ultimately yields a higher power density. Usually embedding is performed during lay-up of the PCB. Here, a novel concept for fabrication of PCB based power devices is proposed. The bare dies are sandwiched between two circuit boards using Ag sintering and simultaneous lamination of prepregs. The technology is discussed with reference to a 600V / 50A IGBT half bridge module. Using high-Tg isolator material in the PCB, a suitable process window is established and laboratory demonstrators are fabricated. An electrical characterization proves the feasibility of the concept.
This study investigated the thermal performance of a packaging solution designed to manage the electrical isolation and cooling of high voltage ( ) SiC power semiconductor > 3300 V devices. The proposed packaging merges the ceramic substrate and the heat exchanger into a single component, streamlining the overall design. Specifically, a novel heat exchanger is developed for a multi-chip module (20 kV), utilizing a combination of jet impingement and channel- flow cooling techniques. Computational fluid dynamics (CFD) simulations and experimental validation are conducted on a multi-chip module to assess the thermal resistance of this new cooling solution. The results demonstrate a
low thermal resistivity of 0.118 cm2K/W, indicating the potential for improved cooling performance in high voltage and power density semiconductor applications.