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Dive into the research topics where Marcel Wille is active.

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Featured researches published by Marcel Wille.


Nano Letters | 2013

Continuous wave nanowire lasing.

Robert Röder; Marcel Wille; Sebastian Geburt; Jura Rensberg; Mengyao Zhang; Jia Grace Lu; Federico Capasso; Robert Buschlinger; Ulf Peschel; Carsten Ronning

Tin-doped cadmium sulfide nanowires reveal donor-acceptor pair transitions at low-temperature photoluminescence and furthermore exhibit ideal resonator morphology appropriate for lasing at continuous wave pumping. The continuous wave lasing mode is proven by the evolution of the emitted power and spectrum with increasing pump intensity. The high temperature stability up to 120 K at given pumping power is determined by the decreasing optical gain necessary for lasing in an electron-hole plasma.


Nano Letters | 2014

Amphoteric nature of Sn in CdS nanowires.

Mengyao Zhang; Marcel Wille; Robert Röder; Sebastian Heedt; Liubing Huang; Zheng Zhu; Sebastian Geburt; Detlev Grützmacher; Thomas Schäpers; Carsten Ronning; Jia Grace Lu

High-quality CdS nanowires with uniform Sn doping were synthesized using a Sn-catalyzed chemical vapor deposition method. X-ray diffraction and transmission electron microscopy demonstrate the single crystalline wurtzite structure of the CdS/Sn nanowires. Both donor and acceptor levels, which originate from the amphoteric nature of Sn in II-VI semiconductors, are identified using low-temperature microphotoluminescence. This self-compensation effect was cross examined by gate modulation and temperature-dependent electrical transport measurement. They show an overall n-type behavior with relatively low carrier concentration and low carrier mobilities. Moreover, two different donor levels due to intrinsic and extrinsic doping could be distinguished. They agree well with both the electrical and optical data.


Applied Physics Letters | 2016

Absorptive lasing mode suppression in ZnO nano- and microcavities

Marcel Wille; Tom Michalsky; Evgeny Krüger; Marius Grundmann; Rüdiger Schmidt-Grund

We conclusively explain the different lasing mode energies in ZnO nano- and microcavities observed by us and reported in literature. The limited penetration depth of usually used excitation lasers results in an inhomogeneous spatial gain region depending on the structure size and geometry. Hence, weakly or even nonexcited areas remain present after excitation, where modes are instantaneously suppressed by excitonic absorption. We compare the effects for ZnO microwires, nanowires, and tetrapod-like structures at room temperature and demonstrate that the corresponding mode selective effect is most pronounced for whispering-gallery modes in microwires with a hexagonal cross section. Furthermore, the absorptive lasing mode suppression will be demonstrated by correlating the spot size of the excitation laser and the lasing mode characteristic of a single ZnO nanowire.


Applied Physics Letters | 2014

Phonon-assisted lasing in ZnO microwires at room temperature

Tom Michalsky; Marcel Wille; C. P. Dietrich; Robert Röder; Carsten Ronning; Rüdiger Schmidt-Grund; Marius Grundmann

We report on room temperature phonon-assisted whispering gallery mode (WGM) lasing in ZnO microwires. For WGM laser action on the basis of the low gain phonon scattering process high quality resonators with sharp corners and smooth facets are prerequisite. Above the excitation threshold power


Applied Physics Letters | 2017

Lasing in cuprous iodide microwires

Marcel Wille; Evgeny Krüger; Steffen Blaurock; Vitaly Zviagin; Rafael Deichsel; G. Benndorf; Lukas Trefflich; V. Gottschalch; Harald Krautscheid; Rüdiger Schmidt-Grund; Marius Grundmann

P_{\textit{Th}}


Nano Letters | 2017

Dynamical Tuning of Nanowire Lasing Spectra

Maximilian Zapf; Robert Röder; Karl Winkler; Lisa Kaden; Johannes Greil; Marcel Wille; Marius Grundmann; Rüdiger Schmidt-Grund; Alois Lugstein; Carsten Ronning

of typically


Applied Physics Letters | 2017

Non-linear optical deformation potentials in uniaxially strained ZnO microwires

Chris Sturm; Marcel Wille; J. Lenzner; S. Khujanov; Marius Grundmann

100\,kW/cm^2


Nano Letters | 2018

Spatiotemporal Evolution of Coherent Polariton Modes in ZnO Microwire Cavities at Room Temperature

Tom Michalsky; Marcel Wille; Marius Grundmann; Rüdiger Schmidt-Grund

, the recombination of free excitons under emission of two longitudinal optical phonons provides sufficient gain to overcome all losses in the microresonator and to result in laser oscillation. This threshold behavior is accompanied by a distinct change of the far and near field emission patterns, revealing the WGM related nature of the lasing modes. The spectral evolution as well as the characteristic behavior of the integrated photoluminescence intensity versus the excitation power unambiguously prove laser operation. Polarization-resolved measurements show that the laser emission is linear polarized perpendicular to the microwire axis (TE).


Nanotechnology | 2016

Carrier density driven lasing dynamics in ZnO nanowires

Marcel Wille; Chris Sturm; Tom Michalsky; Robert Röder; Carsten Ronning; Rüdiger Schmidt-Grund; Marius Grundmann

We report on the observation of lasing in cuprous iodide (CuI) microwires. A vapor-phase transport growth procedure was used to synthesize CuI microwires with low defect concentration. The crystal structure of single microwires was determined to be of zincblende-type. The high optical quality of single microwires is indicated by the observed series of excitonic emission lines as well as by the formation of gain under optical excitation. Lasing of triangular whispering-gallery modes in single microwires is demonstrated for fs- and ns-excitation from cryogenic temperatures up to 200 K. Time-resolved micro-photoluminescence studies reveal the dynamics of the laser process on the time scale of several picoseconds.


photonics society summer topical meeting series | 2018

Coherent Polariton States in ZnO Nano- and Microstructures

Tom Michalsky; Marcel Wille; Evgeny Krüger; Chris Sturm; Marius Grundmann; Rüdiger Schmidt-Grund

Realizing visionary concepts of integrated photonic circuits, nanospectroscopy, and nanosensing will tremendously benefit from dynamically tunable coherent light sources with lateral dimensions on the subwavelength scale. Therefore, we demonstrate an individual nanowire laser based device which can be gradually tuned by reversible length changes of the nanowire such that uniaxial tensile stress is applied to the respective semiconductor gain material. By straining the device, the spontaneous excitonic emission of the nanowire shifts to lower energies caused by the bandgap reduction of the semiconductor. Moreover, the optical gain spectrum of the nanolaser can be precisely strain-tuned in the high excitation regime. The tuning of the emission does not affect the laser threshold of the device, which is very beneficial for practical applications. The applied length change furthermore adjusts the laser resonances inducing a redshift of the longitudinal modes. Thus, this concept of gradually and dynamically tunable nanolasers enables controlling and modulating the coherent emission on the nanoscale without changing macroscopic ambient conditions. This concept holds therefore huge impact on nanophotonic switches and photonic circuit technology.

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Jia Grace Lu

University of Southern California

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Mengyao Zhang

University of Southern California

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