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Kerr-lens modelocking

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320:, but more often a low stability is a by-product of a cavity design putting emphasis on aperture effects. Older designs used a hard aperture, that simply cuts off, while modern designs use a soft aperture, that means the overlap between the pumped region of the gain medium and the pulse. While the effect of a lens on a free laser beam is quite obvious, inside a cavity the whole beam tries to adapt to this change. The standard cavity with flat mirrors and a thermal lens in the laser crystal has the smallest beam width on the end-mirrors. With the additional Kerr lens the width on the end-mirror gets even smaller. Therefore, small end-mirrors (hard aperture) favor pulses. In Ti:Sapphire oscillators telescopes are inserted around the crystal to increase the intensity. 168: 298: 329:
a larger area on the concave mirror and is less convergent afterwards. So both continuous waves and pulsed light fronts are mirrored back onto themselves. A cavity close to a confocal one means to be close to instability, which means the beam diameter is sensitive to cavity changes. This emphasizes the modulation. With a slightly asymmetric cavity prolonging the cavity emphasizes diffraction and even makes it unstable for
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is stronger. Because of the divergence the light is effectively coming from a point farther apart and leads to more convergence after the concave mirror. This convergence is balanced with diffraction. The pulsed light exits the end face with a smaller beam width and no divergence. Thus it illuminates
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Intensity changes with lengths of nanoseconds are amplified by the Kerr-lensing process and the pulselength further shrinks to achieve higher field strengths in the center of the pulse. This sharpening process is only limited by the bandwidth achievable with the laser material and the cavity-mirrors
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while changing the power density by kicking the end mirror of the resonator cavity (though a piezo mounted, synchronous oscillating end-mirror would be more 'turn key'). Other principles involve different nonlinear effects like saturable absorbers and saturable Bragg reflectors, which induce pulses
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For a soft aperture consider an infinite laser crystal with a thermal lens. A laser beam is guided like in a glass fiber. With an additional Kerr lens the beam width gets smaller. In a real laser the crystal is finite. The cavity on both sides features a concave mirror and then a relative long path
309:(as found in laser resonators) the refractive index changes across the beam profile; the refractive index experienced by the beam is greater in the center of the beam than at the edge. Thus a rod of an active Kerr medium functions as a lens for high intensity light. This is called 290: 324:
to a flat mirror. The continuous-wave light exits the crystal end face with a larger beam width and slight divergence. It illuminates a smaller area on the concave mirror, leading to a small beam-width on the way to the flat mirror. Thus
360:, which often is favoured by the pumping mechanism. This can be achieved by a very strong Kerr-lensing that is strong enough to modelock due to small changes of the laser field strength (laser field build-up or stochastic fluctuations). 414:. Due to the high electrical field strength focused ultrashort laser beams can overcome the threshold of 10 W cm, which surpasses the field strength of the electron-ion bond in atoms. 410:
is an effect that directly reacts on the electric field, the response time is fast enough to produce light pulses in the visible and near infrared with lengths of less than 5
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technology allows to compensate for timing mismatch of different wavelengths inside the cavity due to material dispersion while keeping the stability high and the losses low.
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Initiation of Kerr-lens modelocking depends on the strength of the nonlinear effect involved. If the laser field builds up in a cavity the laser has to overcome the region of
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that gives access to a completely new class of phenomena like measurement of electron movements in an atom (attosecond phenomena), coherent broadband light generation (
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and in extreme cases leads to material destruction. In the laser cavity short bursts of light will then be focused differently from continuous waves.
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Soft aperture Kerr-lens modelocking. Within crystal from inside to outside: Green=pump, blue=pulsed light, red=continuous waves
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Vaziri, M R R (2015-12-15). "Comment on "Nonlinear refraction measurements of materials using the moiré deflectometry"".
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as well as the dispersion of the cavity. The shortest pulse achievable with a given spectrum is called the
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at the same time. To a first approximation it is possible to consider them as independent effects.
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To favor the pulsed mode over continuous-wave, the cavity could be made unstable for
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is a process which results from the nonlinear response of an optical medium to the
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V. Magni, G. Cerullo, and S. De Silvestri, Opt. Commun. 101, 365(1993).
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Modelocking can also be started by shifting the optimum focus from the
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D. E. Spence, P. N. Kean, and W. Sibbett, Opt. Lett. 16, 42(1991).
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B. Proctor, E. Westwig, and F. Wise, Opt. Lett. 18, 1654(1993).
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Because of the non-uniform power density distribution in a
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The length of the medium used for KLM is limited by
437:(extremely exact frequency and time measurements). 372:short enough to initiate the Kerr-lensing process. 90:. Unsourced material may be challenged and removed. 286:of the medium is dependent on the field strength. 433:), material processing and other fields like 293:Hard aperture Kerr-lens modelocking principle 8: 394:The Kerr effect leads to the Kerr-lens and 53:Learn how and when to remove these messages 417:These short pulses open the new field of 230:Learn how and when to remove this message 212:Learn how and when to remove this message 150:Learn how and when to remove this message 296: 288: 175:This article includes a list of general 446: 490:M. Piche, Opt. Commun. 86, 156(1991). 352:Starting a Kerr-lens modelocked laser 7: 376:Modelocking – evolution of the pulse 88:adding citations to reliable sources 181:it lacks sufficient corresponding 14: 34:This article has multiple issues. 166: 64: 23: 346:Carrier envelope offset control 75:needs additional citations for 42:or discuss these issues on the 1: 476:10.1016/j.optcom.2014.09.017 431:optical coherence tomography 344:dispersion. KLM is used in 333:, while staying stable for 526: 365:continuous-wave operation 358:continuous-wave operation 331:continuous-wave operation 318:continuous-wave operation 16:Laser mode-locking method 383:bandwidth-limited pulse 196:more precise citations. 99:"Kerr-lens modelocking" 421:, which is a field of 302: 294: 243:Kerr-lens mode-locking 456:Optics Communications 408:Kerr-lens modelocking 396:Self-phase modulation 300: 292: 441:References and notes 280:electromagnetic wave 84:improve this article 468:2015OptCo.357..200R 303: 295: 427:ultrabroad lasers 258:nonlinear optical 249:) is a method of 240: 239: 232: 222: 221: 214: 160: 159: 152: 134: 57: 517: 510:Nonlinear optics 480: 479: 451: 423:nonlinear optics 419:ultrafast optics 369:pulsed operation 335:pulsed operation 284:refractive index 235: 228: 217: 210: 206: 203: 197: 192:this article by 183:inline citations 170: 169: 162: 155: 148: 144: 141: 135: 133: 92: 68: 60: 49: 27: 26: 19: 525: 524: 520: 519: 518: 516: 515: 514: 500: 499: 484: 483: 453: 452: 448: 443: 404: 378: 354: 236: 225: 224: 223: 218: 207: 201: 198: 188:Please help to 187: 171: 167: 156: 145: 139: 136: 93: 91: 81: 69: 28: 24: 17: 12: 11: 5: 523: 521: 513: 512: 502: 501: 498: 497: 494: 491: 488: 482: 481: 445: 444: 442: 439: 403: 400: 389:Chirped mirror 377: 374: 353: 350: 342:group velocity 276:electric field 238: 237: 220: 219: 174: 172: 165: 158: 157: 72: 70: 63: 58: 32: 31: 29: 22: 15: 13: 10: 9: 6: 4: 3: 2: 522: 511: 508: 507: 505: 495: 492: 489: 486: 485: 477: 473: 469: 465: 461: 457: 450: 447: 440: 438: 436: 432: 428: 424: 420: 415: 413: 409: 401: 399: 397: 392: 390: 386: 384: 375: 373: 370: 366: 361: 359: 351: 349: 347: 343: 338: 336: 332: 327: 321: 319: 314: 312: 311:self-focusing 308: 307:Gaussian beam 299: 291: 287: 285: 281: 277: 273: 268: 266: 262: 259: 255: 252: 248: 244: 234: 231: 216: 213: 205: 195: 191: 185: 184: 178: 173: 164: 163: 154: 151: 143: 140:November 2016 132: 129: 125: 122: 118: 115: 111: 108: 104: 101: –  100: 96: 95:Find sources: 89: 85: 79: 78: 73:This article 71: 67: 62: 61: 56: 54: 47: 46: 41: 40: 35: 30: 21: 20: 459: 455: 449: 416: 412:femtoseconds 407: 405: 402:Applications 393: 387: 379: 362: 355: 339: 322: 315: 304: 270:The optical 269: 265:femtoseconds 251:mode-locking 246: 242: 241: 226: 208: 202:October 2019 199: 180: 146: 137: 127: 120: 113: 106: 94: 82:Please help 77:verification 74: 50: 43: 37: 36:Please help 33: 462:: 200–201. 326:diffraction 272:Kerr effect 261:Kerr effect 194:introducing 177:references 110:newspapers 39:improve it 435:metrology 45:talk page 504:Category 256:via the 464:Bibcode 190:improve 124:scholar 406:Since 282:. The 278:of an 254:lasers 179:, but 126:  119:  112:  105:  97:  131:JSTOR 117:books 103:news 472:doi 460:357 367:to 247:KLM 86:by 506:: 470:. 458:. 385:. 348:. 337:. 267:. 48:. 478:. 474:: 466:: 245:( 233:) 227:( 215:) 209:( 204:) 200:( 186:. 153:) 147:( 142:) 138:( 128:· 121:· 114:· 107:· 80:. 55:) 51:(

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"Kerr-lens modelocking"
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references
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mode-locking
lasers
nonlinear optical
Kerr effect
femtoseconds
Kerr effect
electric field
electromagnetic wave
refractive index

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