Composants WBG en GaN: Nouvelles Opportunités pour l'électronique de Puissance

Similar documents
gan power Energy-efficient power electronics with Gallium Nitride transistors Leti, technology research institute Contact:

gan power Energy-efficient Power Electronics using Gallium Nitride Transistors Leti, technology research institute Contact:

Gallium Nitride Power Transistors in the EV World. June 2017

Next-Generation Power Electronics Technology with Vehicle Electrification

EPE 18 ECCE Europe: LIST OF KEYWORDS

SiC and GaN adoption by EV/HEV market

Power Electronics Roadmap. Updated by the Advanced Propulsion Centre in collaboration with and on behalf of the Automotive Council

SiC Hybrid Module Application Note Chapter 1 Concept and Features

Power Semiconductor Switches

SiC for emobility applications

Keynote GaN Power Transistors Powering Up

General Manager Industrial & Multisegment Sector Systems Lab & Technical Marketing

Inverter Market Trends and Major Technology Changes

Devices and their Packaging Technology

GaN ON SILICON TECHNOLOGY: A NEW ERA OF ENERGY CONVERSION. Thierry Bouchet - Director Technical Marketing Strategy, Power Electronics

Electric cars: Technology

All-SiC Module for Mega-Solar Power Conditioner

2011 EPRI HVDC & FACTS Conference WELCOME ADDRESS. Dr. Ram Adapa EPRI

Nanoelectronics and Embedded Systems Internet of Vehicles meets Internet of Energy

Power Electronics Projects

Introduction to Power Electronics - A Tutorial. Burak Ozpineci Power Electronics and Electrical Power Systems Research Center

NEXT-GENERATION POWER SEMICONDUCTORS: MARKETS MATERIALS, TECHNOLOGIES

High Speed V-Series of Fast Discrete IGBTs

Silicon Carbide Semiconductor Products

Maximizing the Potential of WBG Devices for EV Battery Chargers

Next Generation Power Electronics - Research Cooperation of Leading Regions

POWER ELECTRONICS & DRIVES

Semiconduttori di Potenza per Automotive. 17 th November 2016

Power & Smart Power Solutions

Inverter with MPPT and Suppressed Leakage Current

Power Electronics & Drives [Simulink, Hardware-Open & Closed Loop]

Power semiconductors for grid system power electronics applications

Power Electronics for Medium Voltage Grid Applications Topologies and Semiconductors

Power through Innovation. UK and China Joint R&D & Wide Band Gap Semiconductors: UK operating in global market. Yangang Wang

2012 Quick Reference Guide

$3.06B. +25 % ADG Distribution Q1-o-Q1 Growth. Automotive & Discrete Group. ADG: Group at a Glance Key Financial data by Sub-Group +6 % +13 %

Electric vehicle (EV) ecosystem

Benefits of SiC MOSFET technology in powertrain inverter of a Formula E racing car

Power Electronics. Rajeev Ram, Program Director, ARPA-E

Enhanced Breakdown Voltage for All-SiC Modules

1. RENEWABLE ENERGY I.SOLAR ENERGY PROJECT TITLES WE CAN ALSO IMPLEMENT YOUR OWN CONCEPT/IDEA

E-DRIVE: HIGHLY INTEGRATED AND HIGH EFFICIENT

Future Power Delivery System Profs. Alex Huang & Mesut Baran Semiconductor Power Electronics Center (SPEC) NC State University July 22, 2008

EE Architecture for Highly Electrified Powertrain

Lecture 2. Power semiconductor devices (Power switches)

High Voltage Solutions in HEV/EV Part II: - DC/DC Converters and Traction Inverters. Hong Huang

Possibility of Power Electronics Paradigm Shift with Wide Band Gap Semiconductors

Vehicle Impact due to E- Mobility 5. Bayerischer Innovationskongress 23.June 2016 Techbase

SPIRO SOLUTIONS PVT LTD POWER ELECTRONICS 1. RENEWABLE ENERGY PROJECT TITLES I. SOLAR ENERGY

VEHICLE ELECTRICAL SYSTEMS INTEGRATION (VESI) PROJECT

Topsil Semiconductor. LD SmallCap Seminar 7 October 2010

Novel High Efficiency UPS System

The ERANET+ «Electromobility» - project

Power Electronics Technology: Current Status and Future Outlook

Market tendencies within industrial and mobile applications

New Power Electronic Devices and Technologies for the Energy Sector

IFX Day Automotive, Industrial & Multimarket. Power Management & Drives. Arunjai Mittal. Munich, March 13, 2007

Overview of Power Electronics for Hybrid Vehicles

G2V and V2G operation 20 kw Battery Charger

Electric Drive Technologies Roadmap Update

Status: Mietek Bakowski, Jang-Kwon Lim, Konstantin Kostov (RISE Acreo)

Automotive Power Electronics Roadmap

Mitsubishi Power Semiconductor Devices. Mitsubishi Electric Corporation Power Device Works 27 th May, 2008

Automotive Electronic Olympics Lighter, faster power. How GaN is gaining speed

Automotive Electronic Olympics Lighter, faster power. How GaN is gaining speed

Semicon West San Francisco, CA July 12, 2016 Dr. John Muth

December 2009, March 2010

High Voltage Solutions in HEV/EV Part I: - On Board Chargers and Charging Stations. Hong Huang 1

Vehicle Electrical Systems Integration

EE 353 Power Electronics

FUSES FOR SEMICONDUCTORS

What s here and what s coming in wide bandgap power semiconductor transistors

Speed Enhancement for the 3rd-Generation Direct Liquid Cooling Power Modules for Automotive Applications with RC-IGBT

Monolithic GaN Device Integration Drives Efficiency, Density and Reliability in Power Conversion

From Technologies to Market. Power Electronics Overview: What are the markets and trends?

Power Electronics for DC Grids

Expanded Lineup of High-Power 6th Generation IGBT Module Families

Newly Developed High Power 2-in-1 IGBT Module

Efficient High-Voltage GaN Devices and ICs for Next Generation Power Management Solutions

Power Electronics to Improve the Performance of Modern Power Systems

Philosophy of Topology and Component Selection for Cost and Performance in Automotive Converters.

Second Edition. Power Electronics. Devices and Circuits. V. Jagannathan

Ph: October 27, 2017

POWER ELECTRONICS TITLES LeMeniz Infotech

Visions for Power Electronics in Automotive Applications

GaN 07 New perspectives for nitride materials and devices

Making Silicon Carbide Schottky Diodes and MOSFETs Mainstream Demands New Approaches to Wafer Fabrication and Converter Design

Electronic Power Conversion

NEW ENERGY -4- MOBILITY TECHNOLOGIES

Fast thyristors. When burning for induction heating solutions.

May 25, 2004; 4:00 p.m. to 4:30 p.m. PCIM 2004

HYBRID ELECTRIC VEHICLE SYSTEM MODELING AND CONTROL

Solar Power Energy Harvesting Electrical Integration

Silicon Carbide (SiC)

Next Generation Power Electronics based on WBG Devices - WBG System Integration

High Efficiency SiC Power Semiconductor. May 20, 2014 Toyota Motor Corporation

3IT L ÉNERGIE SOLAIRE ET LE QUÉBEC. Colloque AQPER Richard Arès SHERBROOKE UNIVERSITÉ DE

POWER ELECTRONICS AND SYSTEM TECHNOLOGIES FOR ENERGY SUPPLY

What drives silicon demand? Dr. Volker Braetsch Senior Vice President, Global Sales & Marketing September 21, 2017

Driving Electromobility

Transcription:

Composants WBG en GaN: Nouvelles Opportunités pour l'électronique de Puissance Filippo Di Giovanni STMicroelectronics Paris 20 November 2018 Release 1.0

GaN Development Strategy 2 September 24, 2018 (*) ST and CEA-Leti have joined forces to develop a 650 V normally-off GaN HEMT at 8 exploiting a full range of IPs owned by both Companies to deliver the state-of-the-art GaN technology for the most demanding power conversion applications September 26, 2018 (**) STMicroelectronics va créer une ligne de fabrication de puces en nitrure de gallium à Tours Bonne nouvelle pour le site industriel de STMicroelectronics à Tours. Le fabricant franco-italien de semiconducteurs compte y ouvrir en 2020 une ligne de production de circuits de puissance en nitrure de gallium (GaN pour gallium arsenide) sur plaquettes silicium de 200 mm de diamètre. La technologie y sera transférée depuis l IRT Nanoelec à Grenoble, où il collabore à son développement avec le CEA- Leti, le laboratoire d électronique du CEA qui pilote cet institut de recherche technologique Sources: (*) https://www.st.com/content/st_com/en/about/media-center/press-item.html/t4092.html (**) https://www.usinenouvelle.com/article/stmicroelectronics-va-creer-une-ligne-de-fabrication-de-puces-en-nitrure-de-gallium-a-tours.n746629

Why Gallium Nitride? 3 The ever-increasing demand for electricity and pervasive use of Internet services must cope with efforts to de-carbonize our society. This can be achieved by improving the efficiency of all energy conversion systems from generation down to distribution Small Form Factor Benefits of GaN Silicon has dominated power applications for many years, but its physical limits are being approached. Only minimal improvements inefficiency can be achieved. System Efficiency Wide Band Gap (WBG) semiconductors, and especially Gallium Nitride (GaN), have unique properties including lower on-resistance and faster switching that allow energy loss reduction and miniaturization. GaN is now a credible alternative to silicon in power conversion processes. Environmental Impact

GaN Impact on Energy Consumption IT (Information Technology) Infrastructure Scenario 4 17,641 TWh Total WW Electricity Consumption (2014) IT 10% 1,764.1 TWh Assuming 1% efficiency improvement in IT power supplies, we will get a total energy saving of 17.6 TWh 1,513,327.6 TOE 2,161,896.5 TCE Motor Drives 55% Lighting 20% 6,201,869,960 Kg CO2e 10.36 MMBOE Others 15% Electricity Consumption by Application MMBOE: Million Barrels of Oil Equivalent TOE: tonnes of oil equivalent TCE: tonnes of coal equivalent An average nuclear plant has a capacity of 0.7 GW, so output in one full year is almost 6 TWh Therefore the total energy saving equals that of (17.6 / 6) ~ 3 nuclear plants! Sources: U.S. Energy Information Administration, STMicroelectronics

Powering Next-generation Datacenters with GaN IT (Information Technology) Infrastructure Scenario 5 Improving form factor and power density Totem Pole PFC 400V DC LLC 36-60V DC PoL DC/DC 1.0V/1.8V 85-265 V AC CPU, FPGA, Boosting efficiency and reliability > 30% volume reduction PoL DC/DC 4X Power density memory 85-265 V AC 99% efficiency Totem Pole PFC 400V DC 97% efficiency LLC 36-60V DC reduce component count by 50% PoL DC/DC PoL DC/DC 1.0V/1.8V CPU, FPGA, memory

GaN Enables Total System Efficiency Improvement 6 GaN power devices allow for reduced gate charge without sacrificing on-resistance leading to power saving and total system downsizing Silicon MOSFET GaN power device Conduction loss 5% Switching loss 2% Switching loss 20% Conduction loss 25% Power loss from other causes 55% x2 x3 power loss reduction Power loss from other causes 33% Power loss cut 60% Moving from Si MOSFET to GaN power devices Total efficiency: 85% On-resistance losses: about 1/5 Switching speed: x40 - x100 Total efficiency: 95% Operation frequency: 3x Source: STMicroelectronics

60 W Laptop Adapter with 92% Efficiency and Small Form Factor 7 Conventional adaptor based on Silicon switch* Adaptor based on GaN switch 5cm 12cm 3cm *Super Junction power MOSFET

What is GaN? 8 GaN is a binary compound whose molecule is formed from one atom of Gallium (III-group, Z=31) and one of Nitrogen (V-group, Z=7) with wurztite hexagonal structure II III IV V VI 2 Be B C N O 3 Mg Al Si P S 4 Zn Ga Ge As Se 5 Cd In Sn Sb Te Specific on-resistance of WBG vs. Si Material properties Si (111) GaAs SiC GaN E g (ev) 1.1 1.43 2.86 3.39 E c (MV/cm) 0.3 0.45 2.0 3.33 ε r 11.9 13.1 9.8 9 µ (cm 2 /V s) 1350 8500 650 1700 v s (10 7 cm/s) 1 2 2 2.5 Melting point (K) 1415 1238 2827 2791 κ (W/cm K) 1.3 0.46 4.9 1.3 R on, spec =4 BV 2 /(e 0 e r )E 3 cr

E-Mode GaN HEMT Different Implementations Overview E-Mode by cascode configuration pgate Recessed gate 9 No intrinsic normally-off Needs an Si device Best mobility and charge Stable gate structure High sheet resistance out of the gate Cannot tolerate Vg > 6 V Normally-off No insulator reliability issues Poor mobility under gate Insulator reliability issues Normally-off Low resistance in the access region and tolerate high VG value

GaN Enables New Topologies 10 Totem-pole PFC Bridgeless Efficiency can reach 99% High power density High efficiency Distributed heat Active Clamp Flyback (ACF) converter Half-bridge LLC converter Low switching losses and inductive energy utilization can be used at high frequencies in applications such as adaptors resulting in drastic size reduction LLC converters use ZVS switching. Coss is discharged before the transistor turns on. Discharge time is therefore a limiting factor for higher frequency unless a GaN transistor is used

Power vs. Frequency on Electronics Power Device Technology Positioning (2018) 11 Grid Wind Rail PV EV/HEV Home appliances Switching power (kw) 10 3 10 2 10 1 10 0 Thyristor GTO/IGCT Si Bipolar IGBT/IPM SiC GaN Si MOSFET UPS Power supplies for AC adapters servers Switching power supplies Audio equipment 10 3 10 4 10 5 10 6 Operating Frequency (Hz) Use of parallel and series connections for power semiconductors, as well as power converters, means that virtually any amount of electric power can be transformed, converted into another energy form or "generated" from another type of energy. Gate turn-off thyristor (GTO) Integrated gate-commutated thyristors (IGCT) Source: Yole Power SiC 2018: Materials, Devices, and Applications

650 V GaN-on-Si diode Development 12 2DEG lateral technology GaN on 8" Si TO220 Package Electrical performances Switching measurements: GaN vs. SiC Reliability in blocking mode at 150 C demonstrated up to 650 V

GaN inside ST Power Ecosystem Car Electrification Power Electronics by applications and technologies 13 Low Medium High Frequency Power Low Medium High ibsg* Up to 10 20kW STripFET F7 80V GaN GaN / STripFET F7, F8 STripFET F7 / STripFET F8 12V/48V DC-DC Approx 3kW Future GaN Today STripFET F7 80V GaN / SiC OBC 22kW Future GaN 650V Today SiC 750V GaN / SiC MDmesh / Si IGBT MDmesh / Si IGBT Traction Inverter <150kW SiC 650V/750V SiC SiC / Si IGBT Traction Inverter >150kW SiC 1200V Traction Inverter <150kW Si IGBT 750V Power DC-DC Approx 100kW SiC 1200V OBC 3.6...11kW Future GaN 650V SiC/Si IGBT/MDmesh Standard Motor Control Up to 5kW STripFET F7 80V/100V 12V 24V 48V 400V 800V Battery Domain Voltage 40V 60V 80/100V 650V/750V 1200V Device Breakdown Voltage *Integrated Belt Starter Generator STripFET F7, F8 (low voltage Power MOSFET) MDmesh (high voltage Power MOSFET)

GaN HEMT Main Target Markets and Applications 14 High Voltage GaN HEMT (650 V) Adaptors (PC, Portable Gear, Wall USB chargers) Servers (PFC) On Board chargers for EV / Plug-in HEV Space and Avionics Low Voltage GaN HEMT (100 V 200 V) Telecom / Datacenter DC/DC converters Wireless Charging Points-of-loads (POL) Class-D audio amplifiers Mild hybrid powertrain

Points-clé à Retenir 15 STMicroelectronics a pris la décision stratégique de compléter son portefeuille technologique de composants de puissance Si et SiC avec une technologie GaN-on-Si en 200 mm. L IRT Nanoelec est un outil de collaboration multi partenarial particulièrement bien adapté à la stratégie de développement de STMicroelectronics sur le GaN Innovation en rupture sur toute la chaîne de la valeur Excellence du consortium Flexibilité du programme technique La première génération de composants GaN-on-Si 650V développée dans l IRT Nanoelec sera transférée sur la ligne pilote 200 mm de ST Tours à partir de l an 2020.