Attosecond Physics and High-Harmonic Generation

How Femtosecond Lasers Open the Gate to 10⁻¹⁸ Seconds

HELIOS-20W-HE、HYPERION-G-HE、AttosecondPhysics hashtag、HHG hashtag、UltrafastLaser

May 19, 2026

Attosecond Physics AND High Harmonic Generation
Application
High‑Repetition‑Rate High‑Order Harmonic Generation (HHG)、Mid‑Infrared Strong‑Field Physics

The 2023 Nobel Prize in Physics (L'Huillier, Agostini, Krausz) marked the transition of attosecond science from frontier experiment to industrial-grade application. High-Harmonic Generation (HHG) — the primary route to attosecond pulses — demands mJ-level pulse energy, few-cycle pulse duration, and 0.1% RMS long-term stability from the driving laser.

Y-LASER recently completed delivery and acceptance of a full attosecond driver chain: HELIOS-20W-HE high-energy femtosecond front-end + HYPERION-G-HE gas MPC pulse compressor + AURORA-IR-HE mid-IR OPA. Factory-measured performance: 222.6 fs → 32.7 fs pulse compression (6.8× ratio), peak power from 9.8 GW to 58.7 GW, 96% throughput, 0.1% RMS power stability sustained over 18 hours. Below we trace the HHG physics and present the measured data behind each stage.

Attosecond Physics and High-Harmonic GenerationAttosecond Physics and High-Harmonic Generation

HELIOS-20W-HE high-energy Yb femtosecond front-end — on-site delivery

AURORA-IR-HE mid-IR OPA + HYPERION-G-HE gas MPC system — on-site delivery

1. HHG Three-Step Model: How Attosecond Pulses Are Born

High-Harmonic Generation follows Corkum's (1993) three-step model:

▪ Tunnel ionization: At focused intensities of 10¹³ – 10¹⁴ W/cm², the valence electron tunnels through the Coulomb barrier. This sets a hard threshold on peak power density — pulse energy must reach the mJ level.

▪ Classical acceleration and return: The free electron accelerates in the optical field, reverses, and returns. Return kinetic energy depends on the ionization phase, giving rise to 'long' and 'short' trajectory families.

▪ Radiative recombination: The returning electron recombines with the parent ion, emitting a high-energy photon. Maximum photon energy follows the cutoff law: E_cutoff = I_p + 3.17 U_p, where U_p ∝ I·λ².

Coherent superposition of harmonic lines yields an attosecond pulse train (APT). Gating techniques (polarization gating, CEP-stable few-cycle driving) isolate a single attosecond pulse (IAP).

2. Cutoff Law → Four Hard Specifications for the Driver

Since U_p ∝ I·λ², higher HHG cutoff energy requires either higher intensity (mJ energy + short pulses) or longer wavelength. In engineering terms, these physics constraints translate into four non-negotiable specifications:

2.1 mJ-Level Pulse Energy

Neon targets (I_p = 21.6 eV) require ~5 × 10¹⁴ W/cm² to reach the water window (284 – 543 eV). For a 30 µm spot and 30 fs duration, this means 1 – 2 mJ per pulse. The HELIOS-20W-HE delivers 2.18 mJ measured, clearing this threshold.

2.2 Few-Cycle Pulse Duration

Isolated attosecond pulse generation requires near-few-cycle driving. At 1037 nm, one optical cycle ≈ 3.45 fs; the HELIOS direct output of 222.6 fs spans 64 cycles. The HYPERION-G-HE compresses this to 32.7 fs (~9.5 cycles) — entering the efficient EUV HHG driving regime.

2.3 10 – 100 kHz Repetition Rate

Legacy 1 kHz Ti:Sapphire systems accumulate signal too slowly for modern attosecond experiments. Yb-based lasers push repetition rates to 10 – 100 kHz, boosting data acquisition by 1 – 2 orders of magnitude while reducing per-pulse thermal loading on gas targets (Hädrich et al., 2015, Nat. Photonics 9, 764). The HELIOS-20W-HE supports continuously tunable 10 – 100 kHz.

2.4 Long-Term Stability

HHG is acutely sensitive to parameter drift: 1% power fluctuation causes > 10% harmonic intensity variation in the cutoff region; µrad-level pointing drift degrades phase matching over multi-hour runs. The HELIOS-20W-HE delivers RMS = 0.1% power stability and 4.27 µrad pointing stability — both measured over 18 continuous hours.

3. HELIOS-20W-HE: Femtosecond Front-End — Measured Data

The HELIOS-20W-HE uses all-solid-state Yb chirped-pulse amplification (CPA), directly diode-pumped with only ~9% quantum defect (vs. 34% for Ti:Sapphire). Key measured parameters:

▪ Center wavelength: 1037 nm

▪ Pulse duration: 222.6 fs (Sech² fit, autocorrelation FWHM)

▪ Pulse energy: 2.18 mJ @ 10 kHz

▪ Average power: 21.8 W

▪ Power stability: RMS = 0.1% (18 h continuous)

▪ Pointing stability: 4.27 µrad (18 h continuous)

▪ Beam quality: M²x = 1.115 / M²y = 1.143

Attosecond Physics and High-Harmonic GenerationAttosecond Physics and High-Harmonic Generation

HELIOS-20W-HE output spectrum: 1037 nm center wavelength @ 10 kHz

HELIOS-20W-HE autocorrelation: 222.6 fs FWHM @ 10 kHz / 2.18 mJ

Attosecond Physics and High-Harmonic Generation

HELIOS-20W-HE power stability: RMS = 0.1% @ 10 kHz / 18 h continuous

Attosecond Physics and High-Harmonic Generation

HELIOS-20W-HE near-field beam profile @ 10 kHz

4. HYPERION-G-HE: Gas MPC Pulse Compressor — Measured Data

At 222 fs, the pulse cannot directly drive HHG to the cutoff region. The HYPERION-G-HE solves this via gas-filled multi-pass cell (MPC) nonlinear compression:

▪ SPM spectral broadening: The pulse traverses an Ar/Ne-filled MPC, accumulating self-phase modulation. Spectrum broadens from 14 nm to 93 nm (−10 dB bandwidth, 6.6× expansion), reducing the transform-limited duration to ~20 fs.

▪ Chirped-mirror compression: A precision negative-dispersion mirror set compensates residual chirp, completing temporal compression.

Key measured results:

▪ Input: 222.6 fs / 2.0 mJ → Output: 32.7 fs / 1.92 mJ

▪ Compression ratio: 6.8×

▪ Throughput efficiency: 96% (near-zero energy loss)

▪ Post-compression power stability: RMS = 0.1% (14 h continuous)

▪ Post-compression pointing stability: 6.8 µrad

Attosecond Physics and High-Harmonic GenerationAttosecond Physics and High-Harmonic Generation

HYPERION-G-HE input/output spectra: 14 nm → 93 nm (−10 dB bandwidth)

HYPERION-G-HE compressed pulse autocorrelation: 32.7 fs (Sech² fit) @ 10 kHz / 1.92 mJ

5. AURORA-IR-HE: Mid-IR OPA Wavelength Extension

The cutoff law (U_p ∝ λ²) means a 2 µm driver yields 4× the cutoff energy of a 1 µm driver, but single-atom HHG efficiency drops as λ⁻⁵ to λ⁻⁶ (Tate et al., 2007, PRL 98, 013901). The AURORA-IR-HE mid-IR OPA covers 1.35 – 4.5 µm continuous tuning for water-window HHG and soft X-ray frontier experiments, and doubles as the core wavelength source for transient absorption spectroscopy (TAS) and time-resolved IR spectroscopy (TRIR).

6. Full-Chain Performance Data

Attosecond Physics and High-Harmonic Generation

6.8× pulse compression, 6× peak-power gain (9.8 → 58.7 GW), 96% throughput. At 32.7 fs ≈ 9.5 optical cycles (@ 1037 nm), the system enters the efficient EUV HHG driving regime.

7. Why Yb CPA + MPC Is Replacing Ti:Sapphire

Ti:Sapphire offers broad gain bandwidth (direct sub-30 fs output at 800 nm), but its Nd:YAG-pumped architecture caps average power at ~20 W and repetition rate at 1 – 10 kHz. Yb solid-state lasers are directly diode-pumped with only 9% quantum defect (vs. 34%), enabling > 20 W / > 2 mJ at 10 – 100 kHz. The narrower Yb gain bandwidth is offset by MPC compression — HYPERION-G-HE's 32.7 fs matches Ti:Sapphire's direct output.

This 'Yb CPA + Gas MPC' architecture is now adopted by leading attosecond groups worldwide: LIDYL (France), MBI (Germany), Lund University (L'Huillier's group, Sweden). Y-LASER's HELIOS + HYPERION-G-HE delivers equivalent capability as a domestically manufactured, turnkey solution — 0.1% RMS stability over 18 hours, ready to run.

8. Summary

222.6 fs → 32.7 fs → attoseconds. Every step backed by measured data. Y-LASER's mission: let attosecond researchers focus on the physics, not the laser.

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