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Dive into the research topics where Barbara M. Trabold is active.

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Featured researches published by Barbara M. Trabold.


Optics Letters | 2013

Amplification of higher-order modes by stimulated Raman scattering in H 2 -filled hollow-core photonic crystal fiber

Barbara M. Trabold; A. Abdolvand; Tijmen G. Euser; A. M. Walser; P. St. J. Russell

We report a method for amplifying higher-order guided modes, synthesized with a spatial light modulator, in a hydrogen-filled hollow-core photonic crystal fiber. The gain mechanism is intermodal stimulated Raman scattering, a pump laser source in the fundamental mode providing amplification for weak higher-order seed modes at the Stokes frequency. The gain for higher-order modes up to LP31 is calculated and verified experimentally.


Optics Letters | 2014

Selective excitation of higher order modes in hollow-core PCF via prism-coupling.

Barbara M. Trabold; David Novoa; A. Abdolvand; Philip St. J. Russell

Prism-coupling through the microstructured cladding is used to selectively excite individual higher order modes in hollow-core photonic crystal fibers (PCFs). Mode selection is achieved by varying the angle between the incoming beam and the fiber axis, in order to match the axial wavevector component to that of the desired mode. The technique allows accurate measurement of the effective indices and transmission losses of modes of arbitrary order, even those with highly complex transverse field distributions that would be extremely difficult to excite by conventional endfire coupling.


Optics Express | 2013

Efficient anti-Stokes generation via intermodal stimulated Raman scattering in gas-filled hollow-core PCF

Barbara M. Trabold; A. Abdolvand; Tijmen G. Euser; P. St. J. Russell

A strong anti-Stokes Raman signal, from the vibrational Q(1) transition of hydrogen, is generated in gas-filled hollow-core photonic crystal fiber. To be efficient, this process requires phase-matching, which is not automatically provided since the group velocity dispersion is typically non-zero and--inside a fiber--cannot be compensated for using a crossed-beam geometry. Phase-matching can however be arranged by exploiting the different dispersion profiles of higher-order modes. We demonstrate the generation of first and second anti-Stokes signals in higher-order modes by pumping with an appropriate mixture of fundamental and a higher-order modes, synthesized using a spatial light modulator. Conversion efficiencies as high as 5.3% are achieved from the pump to the first anti-Stokes band.


Optics Express | 2014

Supercontinuum up-conversion via molecular modulation in gas-filled hollow-core PCF.

Sebastian Bauerschmidt; David Novoa; Barbara M. Trabold; A. Abdolvand; P. St. J. Russell

We report on the efficient, tunable, and selective frequency up-conversion of a supercontinuum spectrum via molecular modulation in a hydrogen-filled hollow-core photonic crystal fiber. The vibrational Q(1) Raman transition of hydrogen is excited in the fiber by a pump pre-pulse, enabling the excitation of a synchronous, collective oscillation of the molecules. This coherence wave is then used to up-shift the frequency of an arbitrarily weak, delayed probe pulse. Perfect phase-matching for this process is achieved by using higher order fiber modes and adjusting the pressure of the filling gas. Conversion efficiencies of ~50% are obtained within a tuning range of 25 THz.


Sensors | 2017

Monitoring the Wobbe Index of Natural Gas Using Fiber-Enhanced Raman Spectroscopy

Vincenz Sandfort; Barbara M. Trabold; A. Abdolvand; Carsten Bolwien; Philip St. J. Russell; Jürgen Wöllenstein; Stefan Palzer

The fast and reliable analysis of the natural gas composition requires the simultaneous quantification of numerous gaseous components. To this end, fiber-enhanced Raman spectroscopy is a powerful tool to detect most components in a single measurement using a single laser source. However, practical issues such as detection limit, gas exchange time and background Raman signals from the fiber material still pose obstacles to utilizing the scheme in real-world settings. This paper compares the performance of two types of hollow-core photonic crystal fiber (PCF), namely photonic bandgap PCF and kagomé-style PCF, and assesses their potential for online determination of the Wobbe index. In contrast to bandgap PCF, kagomé-PCF allows for reliable detection of Raman-scattered photons even below 1200 cm−1, which in turn enables fast and comprehensive assessment of the natural gas quality of arbitrary mixtures.


Optics Express | 2015

Raman amplification of pure side-seeded higher-order modes in hydrogen-filled hollow-core PCF.

Jean-Michel Ménard; Barbara M. Trabold; A. Abdolvand; Philip St. J. Russell

We use Raman amplification in hydrogen-filled hollow-core kagomé photonic crystal fiber to generate high energy pulses in pure single higher-order modes. The desired higher-order mode at the Stokes frequency is precisely seeded by injecting a pulse of light from the side, using a prism to select the required modal propagation constant. An intense pump pulse in the fundamental mode transfers its energy to the Stokes seed pulse with measured gains exceeding 60 dB and output pulse energies as high as 8 µJ. A pressure gradient is used to suppress stimulated Raman scattering into the fundamental mode at the Stokes frequency. The growth of the Stokes pulse energy is experimentally and theoretically investigated for six different higher-order modes. The technique has significant advantages over the use of spatial light modulators to synthesize higher-order mode patterns, since it is very difficult to perfectly match the actual eigenmode of the fiber core, especially for higher-order modes with complex multi-lobed transverse field profiles.


conference on lasers and electro optics | 2014

Selective Excitation of Pure Higher Order Modes in Hollow-Core PCF via Side-Coupling

Barbara M. Trabold; David Novoa; A. Abdolvand; P. St. J. Russell

Side-coupling enables the selective excitation of individual higher order modes in hollow-core PCF, permitting the complex near-field modal patterns to be cleanly observed at any wavelength. Modal phase indices and losses can be accurately measured.


Advanced Photonics (2014), paper NW1A.4 | 2014

Efficient Tunable Frequency Up-Conversion via Molecular Modulation in Gas-Filled Hollow-Core PCF

Sebastian Bauerschmidt; Barbara M. Trabold; David Novoa; A. Abdolvand; Philip St. J. Russell

Supercontinuum radiation is frequency up-shifted with ~50% quantum efficiency by Raman-driven molecular modulation in a hydrogen-filled hollow-core PCF. Perfect phase-matching is achieved by pressure tuning and the use of higher order modes.


Optics Letters | 2017

Broadband high-resolution multi-species CARS in gas-filled hollow-core photonic crystal fiber

Barbara M. Trabold; Robert J. R. Hupfer; A. Abdolvand; Philip St. James Russell


conference on lasers and electro optics | 2018

Broadband multi-species CARS in gas-filled hollow-core photonic crystal fiber

Rinat Tyumenev; Barbara M. Trabold; Luisa Späth; Michael H. Frosz; Philip St. J. Russell

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