Knowledge

Lightwave Electronics Corporation

Source đź“ť

105: 22: 244: 273:
side-pumped. Small-diameter (<2 mm) Nd:YAG rods were pumped by powerful (>20 watt), large-aperture semiconductor lasers placed alongside the rods. Lightwave Electronics developed and patented a design enabling efficient side-pumping of a laser while maintaining diffraction-limited output. The end-pumped pumped products were limited in power to less than 1 watt, while side-pumped products have exceeded 20 watts.
124:, and was a significant contributor to the creation and maturation of this technology. Lightwave Electronics was a technology-focused company, with diverse markets, including science and micromachining. Inventors employed by Lightwave Electronics received 51 US patents, and Lightwave Electronics products were referenced by non-affiliated inventors in 91 US patents. 215:(LBO). Lightwave’s Q-switched multi-watt UV lasers emitted longer pulses than competing lasers and allowed effective processing of materials, probably by melting as opposed to ablation (vaporization), thus lowering the power needed for removing material in operations such as laser-drilling small holes in circuit boards, or laser-cutting circuit boards 252:
Early products benefited from relationships with Stanford University and other Bay Area laboratories. The nonplanar ring oscillator technology was invented at Stanford University, and the patent was licensed to Lightwave Electronics. The injection seeding product was developed with cooperation from
135:. The Newport Corporation, then headed by Dr. Milton Chang, was a significant early investor. Mortensen was president at the company’s founding, and he served as president for almost 15 years. Phillip Meredith was president from 2000 until the sale of the company in 2005. JDS Uniphase Corporation ( 264:
Lightwave Electronics is listed as the assignee on 51 United States patents. Several of these relate to active laser stabilization, including stabilization of optical frequency, of intensity, and of pulse repetition rate and pulse energy. Another set relate to laser manufacturing techniques. Early
247:
Photograph shows the technique used to mount optics in a Lightwave Electronics single-frequency frequency-doubled laser. The optic in the left foreground is bonded with a thin layer of UV-curing adhesive to a support block, also made of glass, which is bonded to the platform. This design approach
347: 222:
with low frequency jitter and drift. The most significant application was for high-speed measurements of voltages as a step in the design and improvement of integrated circuits. A distinct line of mode-locked lasers produced ultraviolet output at 355 nm, used for fluorescence excitation in
210:
Also of significant industrial importance was a series of internally frequency converted Q-switched lasers, with 2 to 20 Watt of ultraviolet output at 355 nm, used for a variety of micromachining applications. Lightwave introduced these UV lasers in 1998. The nonlinear frequency converting
155:
In the scientific community, Lightwave Electronics was best known for single-frequency lasers based on the nonplanar ring oscillator design. These lasers operated at the wavelengths of 1064 nm and 1319 nm, and were based on the laser material neodymium-doped yttrium-aluminum garnet
272:
Lightwave Electronics' nonplanar ring lasers, and the infrared Q-switched lasers used for DRAM production, were "end-pumped," meaning that the beam from the semiconductor laser pump was co-axial with the beam of the pumped laser. Later lasers, including all of the 355 nm lasers, were
108:
A Lightwave Electronics model 122 microprocessor controlled Nd:YAG laser, produced in about 1990. This laser was based on the nonplanar ring oscillator design. This continuous-wave, single-frequency laser was aimed at the laboratory market. Lightwave Electronic's biggest market was for
195:, which were used to improve yield in semiconductor memory manufacturing. For about 2 decades, from about 1988 to 2008, semiconductor manufacturers used the Lightwave Electronics miniature Q-switched lasers in the link blowing step during the production of the majority of the world’s 180:” system which was used to enforce single-frequency oscillation in 1-joule-level lamp-pumped Q-switched lasers, improving the utility of those lasers for quantitative spectroscopy. This injection seeding system was the first Lightwave Electronics product with significant sales. 336: 296:. Products sold by Lumentum in 2015 which derive from Lightwave Electronics Corporation products are: the NPRO 125/126 series nonplanar ring lasers, the Q-series Q-switched 355 nm lasers, and the Xcyte quasi-continuous 355 nm lasers. 311: 369: 433:
D. C. Gerstenberger, G. E. Tye, and R. W. Wallace, "Efficient second-harmonic conversion of cw single-frequency Nd:YAG laser light by frequency locking to a monolithic ring frequency doubler," Opt. Lett. 16, 992-994
458:
M. J. Dyer, W. K. Bischel, and D. G. Scerbak, "Injection locking of Nd:YAG lasers using a diode-pumped cw YAG seed laser," in Conference on Lasers and Electro-Optics, Vol. 14 of OSA Technical Digest (1987), paper
731: 127:
Lightwave Electronics was a California corporation, which was founded in 1984. Some of the founders were Robert L. Mortensen, a former executive at the laser manufacturer Spectra Physics, and Drs.
488:
Edward J. Swenson ; Yunlong Sun and Corey M. Dunsky "Laser micromachining in the microelectronics industry: a historical overview", Proc. SPIE 4095, Laser Beam Shaping, 118 (October 25, 2000)
113:
lasers, (lasers used as components in other manufacturer's systems), primarily Q-switched lasers for micromachining. (Photo from Sam's Laser FAQ, www.repairfaq.org/sam/laserfaq.htm.)
726: 312:
Jeff Hecht, "Photonic Frontiers: Laser diodes: Looking back/Looking forward: Laser diodes have come a long way and brought five Nobel prizes," Laser Focus World, April 2015
721: 736: 168:, an earth-observing satellite instrument which was still operational in 2015. Lightwave Electronics produced a visible (532 nm) laser source based on 751: 746: 164:) was based on these lasers, operating at 1064 nm. Two Lightwave nonplanar oscillators were launched into space in 2004 as components of NASA’s 479:
William M. Grossman, Martin Gifford, and Richard W. Wallace. "Short-pulse Q-switched 1.3-and 1-ÎĽm diode-pumped lasers." Opt. Let. 15, 622-624 (1990)
51: 741: 517:
L. Rihakova and H. Chmelickova, “Laser Micromachining of Glass, Silicon, and Ceramics,” Advances in Materials Science and Engineering, vol. 2015
67: 322: 380: 265:
Lightwave Electronics lasers used solder to permanently mount optics in place. Later lasers, such the one shown in the figure, used
391:
JDS Uniphase Corporation's 10-K form, filed Aug. 29, 2007, states that the purchase was “for approximately $ 67.2 million in cash.”
358: 188: 292:, of Traverse City MI; Time-Bandwidth Products of Zurich, Switzerland, now a part of Lumentum; and Mobius Photonics, acquired by 446:
Randal L. Schmitt and Larry A. Rahn, "Diode-laser-pumped Nd:YAG laser injection seeding system," Appl. Opt. 25, 629-633 (1986)
192: 508:
Rizvi, Nadeem H., et al. "Micromachining of industrial materials with ultrafast lasers." Proc. ICALEO. Vol. 15. No. 1. 2001.
596:
Thomas J. Kane and Robert L. Byer, "Monolithic, unidirectional single-mode Nd:YAG ring laser," Opt. Lett. 10, 65-67 (1985)
704: 277: 165: 91: 231:. In the late 1990s Lightwave Electronics produced a Nd:YAG laser internally frequency doubled to 532 nm with 56: 143:) purchased Lightwave in 2005, for $ 65M. At that time, the company had 120 employees. The company was located in 43: 422: 348:
Search US Patents with Description/Specification = Lightwave Electronics and Assignee Name ≠ Lightwave Electronics
110: 121: 104: 200: 258: 196: 232: 183:
Lightwave Electronics' first significant success in industrial markets was a series of acousto-optically
527:
US Patent 6,496,261, "Double-pulsed optical interferometer for waveform probing of integrated circuits."
628:
US Patent 5,757,831, "Electronic suppression of optical feedback instabilities in a solid-state laser."
370:
Bloomberg, Company Overview of Lightwave Electronics Corporation, Executive Profile, Phillip Meredith.
169: 144: 498:
US Patent 5,850,407, “Third-harmonic generator with uncoated brewster-cut dispersive output facet.”
243: 47: 400: 650:
US Patent 5,982,790, "System for reducing pulse-to-pulse energy variation in a pulsed laser."
672:
US Patent 6,320,706, "Method and apparatus for positioning and fixating an optical element."
172:
the output of a nonplanar ring oscillator. The nonlinear material used was magnesium-doped
228: 8: 132: 32: 617:
US Patent 4,829,532, "Piezo-electrically tuned optical resonator and laser using same."
560: 539: 36: 469:
US Patent 5,130,995, “Laser with Brewster angled-surface Q-switch aligned co-axially.”
381:
Laser Focus World, "JDSU buys Lightwave Electronics for $ 65 million," March 21, 2005.
565: 254: 212: 71: 411: 323:
Anne Gibbons, “Optics Boom Spawns Need For More Experts,” The Scientist, May 1, 1989
555: 547: 177: 60: 401:
RP Photonics Encyclopedia of Laser Physics (online), "Nonplanar Ring Oscillators,"
218:
For a few years (circa 1996), Lightwave Electronics produced an acousto-optically
423:
Deep Space Optical Communications, edited by Hamid Hemmati, page 444-445. Wiley.
173: 639:
US Patent 6,909,730, "Phase-locked loop control of passively Q-switched lasers."
606:
US Patent 4,578,793, "Solid-state non-planar internally reflecting ring laser."
224: 128: 682: 671: 660: 649: 638: 627: 616: 605: 585: 526: 497: 468: 160:). The first-generation Laser Interferometer Gravitational Wave Observatory ( 715: 293: 569: 219: 157: 359:
Reuters, "Mobius Photonics Names Robert L. Mortensen CEO," Sept 15, 2009.
184: 540:"Measuring Calpain Activity in Fixed and Living Cells by Flow Cytometry" 266: 248:
allows 5 degrees of freedom for the optic, with a thin adhesive bond.
140: 732:
Defunct manufacturing companies based in the San Francisco Bay Area
694:
Optics.org, "Start-up Spotlight: Mobius Photonics," April 11, 2008.
199:
chips. These miniature Q-switched lasers were in systems built by
693: 288:
Spin-off companies from Lightwave Electronics Corporation include
683:
US Patent 5,774,488, "Solid-state laser with trapped pump light."
551: 176:. Another member of the nonplanar ring product family was an “ 227:
applications. Mode-locking was passive, using a semiconductor
204: 661:
US Patent 4,749,842, "Ring laser and method of making same."
586:
US Patent 6,366,593, "Adhesive precision positioning mount."
337:
Search US Patents with Assignee Name = Lightwave Electronics
161: 136: 54:
and tools are available to assist in formatting, such as
727:
Technology companies based in the San Francisco Bay Area
289: 705:
Lumentum company website, Commercial Product Finder.
722:Defunct electronics companies of the United States 412:https://www.advancedligo.mit.edu/diode_laser.html 713: 276:Lightwave Electronics made extensive use of the 737:Companies based in Mountain View, California 35:, which are uninformative and vulnerable to 332: 330: 50:and maintains a consistent citation style. 581: 579: 537: 752:American companies disestablished in 2005 747:Electronics companies established in 1984 559: 454: 452: 442: 440: 92:Learn how and when to remove this message 327: 242: 191:(Nd:YLF), and at 1342 nm, based on 189:neodymium-doped yttrium lithium fluoride 103: 576: 742:American companies established in 1984 714: 449: 437: 283: 280:(SBIR) Program, established in 1982. 193:neodymium-doped yttrium orthovanadate 131:and David Bloom, both professors at 120:was a developer and manufacturer of 15: 267:adhesive cured by ultraviolet light 42:Please consider converting them to 13: 278:Small Business Innovation Research 166:Tropospheric Emission Spectrometer 14: 763: 544:Journal of Visualized Experiments 187:lasers at 1047 nm, based on 118:Lightwave Electronics Corporation 20: 698: 687: 676: 665: 654: 643: 632: 621: 610: 599: 590: 531: 520: 511: 502: 491: 482: 473: 462: 427: 416: 405: 122:diode-pumped solid-state lasers 394: 385: 374: 363: 352: 341: 316: 305: 235:(KTP), used in ophthalmology. 46:to ensure the article remains 1: 538:Farr, C.; Berger, S. (2010). 299: 238: 201:Electro Scientific Industries 139:, now Lumentum, stock ticker 259:Sandia National Laboratories 197:dynamic random-access memory 7: 233:potassium titanyl phosphate 150: 10: 768: 290:Electro-Optics Technology 145:Mountain View, California 249: 114: 246: 107: 284:Successor Companies 133:Stanford University 250: 229:saturable absorber 170:frequency doubling 115: 255:SRI International 220:mode-locked laser 213:lithium triborate 178:injection seeding 102: 101: 94: 52:Several templates 759: 707: 702: 696: 691: 685: 680: 674: 669: 663: 658: 652: 647: 641: 636: 630: 625: 619: 614: 608: 603: 597: 594: 588: 583: 574: 573: 563: 535: 529: 524: 518: 515: 509: 506: 500: 495: 489: 486: 480: 477: 471: 466: 460: 456: 447: 444: 435: 431: 425: 420: 414: 409: 403: 398: 392: 389: 383: 378: 372: 367: 361: 356: 350: 345: 339: 334: 325: 320: 314: 309: 97: 90: 86: 83: 77: 75: 64: 24: 23: 16: 767: 766: 762: 761: 760: 758: 757: 756: 712: 711: 710: 703: 699: 692: 688: 681: 677: 670: 666: 659: 655: 648: 644: 637: 633: 626: 622: 615: 611: 604: 600: 595: 591: 584: 577: 536: 532: 525: 521: 516: 512: 507: 503: 496: 492: 487: 483: 478: 474: 467: 463: 457: 450: 445: 438: 432: 428: 421: 417: 410: 406: 399: 395: 390: 386: 379: 375: 368: 364: 357: 353: 346: 342: 335: 328: 321: 317: 310: 306: 302: 286: 241: 174:lithium niobate 153: 98: 87: 81: 78: 66: 55: 41: 25: 21: 12: 11: 5: 765: 755: 754: 749: 744: 739: 734: 729: 724: 709: 708: 697: 686: 675: 664: 653: 642: 631: 620: 609: 598: 589: 575: 530: 519: 510: 501: 490: 481: 472: 461: 448: 436: 426: 415: 404: 393: 384: 373: 362: 351: 340: 326: 315: 303: 301: 298: 285: 282: 240: 237: 225:flow cytometry 152: 149: 129:Robert L. Byer 100: 99: 44:full citations 28: 26: 19: 9: 6: 4: 3: 2: 764: 753: 750: 748: 745: 743: 740: 738: 735: 733: 730: 728: 725: 723: 720: 719: 717: 706: 701: 695: 690: 684: 679: 673: 668: 662: 657: 651: 646: 640: 635: 629: 624: 618: 613: 607: 602: 593: 587: 582: 580: 571: 567: 562: 557: 553: 549: 545: 541: 534: 528: 523: 514: 505: 499: 494: 485: 476: 470: 465: 455: 453: 443: 441: 430: 424: 419: 413: 408: 402: 397: 388: 382: 377: 371: 366: 360: 355: 349: 344: 338: 333: 331: 324: 319: 313: 308: 304: 297: 295: 294:IPG Photonics 291: 281: 279: 274: 270: 268: 262: 261:(Livermore). 260: 256: 245: 236: 234: 230: 226: 221: 216: 214: 211:material was 208: 206: 202: 198: 194: 190: 186: 181: 179: 175: 171: 167: 163: 159: 148: 146: 142: 138: 134: 130: 125: 123: 119: 112: 106: 96: 93: 85: 73: 72:documentation 69: 62: 61:documentation 58: 53: 49: 45: 40: 38: 34: 29:This article 27: 18: 17: 700: 689: 678: 667: 656: 645: 634: 623: 612: 601: 592: 552:10.3791/2050 546:(41): 2050. 543: 533: 522: 513: 504: 493: 484: 475: 464: 429: 418: 407: 396: 387: 376: 365: 354: 343: 318: 307: 287: 275: 271: 263: 251: 217: 209: 182: 154: 126: 117: 116: 88: 79: 68:Citation bot 30: 203:, GSI, and 82:August 2022 716:Categories 300:References 239:Technology 185:Q-switched 48:verifiable 33:bare URLs 570:20644512 151:Products 37:link rot 561:3156068 568:  558:  434:(1991) 158:Nd:YAG 57:reFill 205:Nikon 31:uses 566:PMID 459:WN4. 257:and 162:LIGO 141:LITE 137:JDSU 65:and 556:PMC 548:doi 111:OEM 718:: 578:^ 564:. 554:. 542:. 451:^ 439:^ 329:^ 269:. 207:. 147:. 572:. 550:: 156:( 95:) 89:( 84:) 80:( 76:. 74:) 70:( 63:) 59:( 39:.

Index

bare URLs
link rot
full citations
verifiable
Several templates
reFill
documentation
Citation bot
documentation
Learn how and when to remove this message

OEM
diode-pumped solid-state lasers
Robert L. Byer
Stanford University
JDSU
LITE
Mountain View, California
Nd:YAG
LIGO
Tropospheric Emission Spectrometer
frequency doubling
lithium niobate
injection seeding
Q-switched
neodymium-doped yttrium lithium fluoride
neodymium-doped yttrium orthovanadate
dynamic random-access memory
Electro Scientific Industries
Nikon

Text is available under the Creative Commons Attribution-ShareAlike License. Additional terms may apply.

↑