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A 0.15  M Radiation-Hardened Antifuse Field Programmable Gate Array Technology

A 0.15  M Radiation-Hardened Antifuse Field Programmable Gate Array Technology. Leonard Rockett 1 , Dinu Patel 1 , Steven Danziger 1 , Balwinder Sujlana 1 , Les Palkuti 2 , John McCollum 3 , J.J. Wang 3 , Brian Cronquist 3 , Farid Issaq 3 and Frank Hawley 3

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A 0.15  M Radiation-Hardened Antifuse Field Programmable Gate Array Technology

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  1. A 0.15M Radiation-Hardened Antifuse Field Programmable Gate Array Technology Leonard Rockett1, Dinu Patel1, Steven Danziger1, Balwinder Sujlana1, Les Palkuti2, John McCollum3, J.J. Wang3, Brian Cronquist3, Farid Issaq3 and Frank Hawley3 1BAE SYSTEMS, 9300 Wellington Road, Manassas, VA 20110-4122 2Defense Threat Reduction Agency, 6801 Telegraph Rd, Alexandria VA 22310 3Actel Corporation, 2061 Stierlin Ct, Mountain View, CA 94043 The RH AX250-S production installation effort is sponsored by the Defense Threat Reduction Agency. MAPLD 2005 / E134 Rockett

  2. Outline • Introduction • Process Development • Base Radiation Hardened Process • Anti-fuse • High Voltage Transistor • Radiation Results • Total Ionizing Dose • Single Event Gate Rupture • Single Event Upset • Summary 1

  3. Introduction • FPGA products are used extensively in space systems • Since 1996, BAE Systems has supplied Actel over 25,000 ONO anti-fuse based Rad Hard FPGA’s • Next generation radiation hardened Metal to Metal (M2M) • anti-fuse based FPGA is needed for advanced military and • space applications • Actel and BAE SYSTEMS are developing next generation RH • FPGA, leveraging: • Our decade long collaboration • Actel’s proven rad tolerant FPGA design • BAE Systems’ newly modernized rad hard CMOS technology capabilities. 2

  4. RHAX250-S Approach RH15 Radiation Hardened Base Process Radiation Hardened FPGA – AX250-S Final stages • FPGA • Unique features • High Voltage Tx • Anti-fuse 3

  5. Off-Current Total Ionizing Dose Response for 3.3V NFET Transistor Unhardened Sample Hardened Splits High voltage NFET transistors exceed hardness requirements 4

  6. Total Dose Response for Parasitic Isolation (STI) Device Unhardened Sample Hardened Splits High voltage transistor isolation exceeds hardness requirements 5

  7. TID Radiation Testing - RH15 High Speed CktRH15 Base process • Gamma-Cell • Dose-rate = 46rd(SiO2)/s • Maximum Dose = 2Mrd(SiO2) • Room temperature • Known pattern (all 1’s) clocked into circuit • Vdd(Core) = 1.65V • Vdd(I/O) = 3.6V Error-bars are minimum and maximum of dataset DC parametric shows stability to 2Mrd(SiO2) Idd(Q)-Core shows very little change in value after 2Mrd(SiO2) 6

  8. TID Radiation Testing on High Speed CktRH15 Base process Error-bars are minimum and maximum of dataset RH15 High Speed Circuit shows >1GHz performance both pre- and post-irradiation (2 Mrd(SiO2)) 7

  9. TID Testing on 4Mb SRAM RH15 Base process DC & AC parameters and functionality show very little change after 2Mrd(SiO2) 8

  10. RHAX250-S Approach RH15 Radiation Hardened Base Process Radiation Hardened FPGA – AX250-S Final stages • FPGA • Unique features • High Voltage Tx • Anti-fuse 9

  11. RHAX250-S Product Road Map  RTAX250-S Process & Design Rule Development • RTAX250-S design transferred to BAE  Process Integration / Technology Validation Completing First FPGA lots started Product Demonstration Actel-BAE collaboration supported by DTRA QML Qualification RHAX250-S 10

  12. RHAX250-S FPGA Product RHAX250-S Product Features: M2M Antifuse Structure: M2M antifuse Radiation Hardness Features Total Ionizing Dose:  1Mrad (Si) Single Event Latchup: Immune Single Event UpsetLET: > 37MeV-cm2/mg SETe-RAM: < 1E-10 e/b-d (EDAC) TMR-hardened registers. 11

  13. SEM Cross-section of Metal to Metal Anti-fuse TiN TEOS Amorphous Si TiN Ti W- Stud 12

  14. Anti-Fuse Time Dependent Dielectric breakdown Anti-fuse element TDDB meets or exceeds requirements 15

  15. PFET High Voltage Transistors Data High voltage PFET process optimization is very encouraging 16

  16. NFET High Voltage Transistor Data High voltage NFET optimization meets the specifications requirement 17

  17. SEDR Testing - Actel’s Prototype RTAX250 • Plotting power supply current (ICC) versus run time and checking • ICC, there was no occurrence of SEDR in any test run. The • maximum LET used at BNL was 60 MeV•cm2/mg, and the • maximum LET used at TAMU was 54 MeV•cm2/mg. • Normal incidence is worst case for SEDR, so the worst case • testing was performed in test runs with high LET ions. ICCA has small fluctuations but no significant permanent jumps, which would be the signature of SEDR. 18

  18. Triple Modular Redundant Flip-Flop (K-Latch) Triple Modular Redundant (TMR) Latch used for SEU Hardness 19

  19. Weibull Fit Hard-wired TMR Flip-Flop Cross-section per bit SER = 1.96x10-11 upsets/bit•day Logic with TMR latches exceed hardness requirements 20

  20. Summary • BAE Systems and Actel Corporation continue their long successful collaboration • 0.15m radiation-hardened 250K gate FPGA for space in development • Same form, fit, and function as commercial RT version • RH process Total ionizing dose data meets target • Single Event Upset test results of TMR-hardened flip-flop designs meet target, no occurrence of SEDR observed during heavy ion testing • Full suite of radiation testing planned for Radiation Hardened product demonstration Product installation efforts are progressing well toward completion in early 2006, with qualified parts available in late 2006 The RH AX250-S production installation effort is sponsored by the Defense Threat Reduction Agency. 21

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