Thursday, June 20, 2019

June 2019. We at Clark-MXR are pleased to announce two new products at the Laser world of photonics trade fair.
In keeping with our tradition of “first-to-the-market” products, we will introduce SolaFab, a complete desktop machining station that integrates a source from our new SOLAS family of lasers. The SolaFab breaks both size and cost barriers for femtosecond laser machining.
Please see us at Hall 2, Booth 108 to discuss how we can help you explore, characterize and/or fabricate the very small.

Tuesday, October 2, 2018


 Congratulations...!

 
Physics Nobel Prize

Clark-MXR would like to congratulate this year's Physics Nobel laureates, Professors Gerard Mourou and Donna Strickland for their invention of Chirped pulse amplification and Professor Arthur Ashkin for optical tweezers.
 
For Clark-MXR, this is a joyous occasion as Prof. Gerard Mourou is one of our co-founders and our CPA-Series laser, first introduced in 1992, is named after the Chirped Pulse Amplification technique that Profs. Gerard Mourou and Donna Strickland are honored for.
 
We congratulate all three recipients of the Physics Nobel prize and especially our co-founder, Prof. Gerard Mourou.

Friday, February 16, 2018



Using Label-free imaging techniques to further understanding of Multiple Sclerosis

Multiple Sclerosis (MS) is an autoimmune inflammatory disease that affects nearly 2.3 million young adults worldwide. In cases of MS, the immune system promotes an attack on the central nervous system (CNS), often leading to disability and degeneration.
 
The MS lesion is traditionally considered the leading indicator of CNS damage and thus has been studied for decades through various clinical pathological methods. However, it has been found that surrounding regions in the brain, known as 'normal-appearing' white matter (NAWM), also present some abnormalities in MS cases.
 
Label-free imaging techniques, such as coherent anti-Stokes Raman scattering (CARS) and Stimulated Raman scattering (SRS) have proven to be effective tools for investigating these NAWM abnormalities due to their ability to accurately examine lipid-rich structures like myelin. Prof. Peter Stys and his research group at the Hotchkiss Brain Institute at the University of Calgary studied these abnormalities in the NAWM regions with these methods: in their research, they utilized Clark-MXR's IMPULSE fiber laser coupled with novel dual-NOPA setup to perform spectrally chirped CARS (sCARS).

Read more: Further information can be found in "Lipid biochemical changes detected in normal appearing white matter of chronic multiple sclerosis by spectral coherent Raman imaging", K. W. C. Poon, C. Brideau, R. Klaver, G. J. Schenk, J. J. Geurts and P. K. Stys. Chem. Sci., 2018, Advance Article, DOI: 10.1039/C7SC03992A
Clark-MXR, Inc.
sales@cmxr.com | www.cmxr.com
W. Huron River Dr.
Dexter, MI 48130, USA
1 (734) 426-2803


Using lasers to produce faster electronics and better solar cells  
 
 
Recently, the concept of integrating photonics and electronics, with the goal of producing faster electronics and more effective solar cells, has been attracting a significant amount of interest. To properly understand this idea, the small-scale electronic and photovoltaic processes must be investigated on the atomic or molecular level.
Prof. Hrvoje Petek and his research group at the University of Pittsburgh are aiming to do just that, operating under the notion that processes cannot be controlled until they are adequately measured. To perform their investigations, the research group used a two-photon photoemission spectroscopy method, enabled by IMPULSE laser and NOPA from Clark-MXR.
The researchers specifically examined processes occurring at the interface of silver nanoparticles and TiO2, where a combination of optical, electronic and chemical properties are all taking place. The metal nanoparticles were efficient at absorbing light, due to Plasmon resonance, which concentrated energy before transferring to a semiconductor substrate. Some details of the exact mechanism remain unexplored, but the group's recent publication "Plasmonic coupling at a metal/semiconductor interface" examines the energy transfer mechanism in this metal/semiconductor heterojunction to understand the relationship between light and electronics.
For further in-depth reading, please see the full publication: Plasmonic coupling at a metal/semiconductor interface, Shijing Tan, Adam Argondizzo, Jindong Ren, Liming Liu, Jin Zhao and Hrvoje Petek, Nature Photonics, https://doi.org/10.1038/s41566-017-0049-4

Thursday, September 21, 2017

 Burning coal with femtosecond laser pulses 

 


Since before the industrial age, graphite materials have played an essential role in daily life: their properties are seen in everything from burning embers to the first electric bulbs. Even as technologies advance, graphite materials continue to pique interest in the human mind. 

One example is graphene, a two-dimensional material with remarkable optical and electronic properties, which has sparked a renewed interest in the field of semiconductor research, particularly in studies of solar energy conversion. Prof. Hrvoje Petek and his research group at the University of Pittsburgh are studying graphene to understand its hot electron dynamics. 

The researchers are particularly interested in how this material can be used to enhance the solar energy conversion process. With the help of Clark-MXR’s IMPULSE fiber laser, equipped with iNOPA, they were able to identify the fundamental properties of graphene and study the utility of the material in several applications. This research has produced two publications thus far, which appeared in Physical Review (DOI: 10.1103/PhysRevX.7.011004) and the Journal of the American Chemical Society (DOI: 10.1021/jacs.7b01079).

Wednesday, June 21, 2017


Progress of industrial femtosecond machining
A rich 20-year history
  


Micromachining with femtosecond lasers (also known as ultrafast or ultra-short pulse lasers) is gaining popularity due to several advantageous properties, including the nearly athermal, or "cold," ablation process. For industries demanding smaller and more precise parts, this technology offers several benefits, including higher yields, tighter tolerances, little to no collateral damage, and no post processing.
While femtosecond lasers have begun gaining significant attention in recent years, they were originally showcased 20 years ago at the Laser World of Photonics in Munich, Germany by Clark-MXR, a company founded in 1992 in Dexter, MI. With the help of few other collaborators, Clark-MXR presented the first live demonstration of industrial femtosecond laser micromachining during an exposition or conference.
The image above depicts a glass slide machined with femtosecond laser pulses from a CPA-Series laser from Clark-MXR. These proof-of-principal parts were machined in real time during the show in Munich and given to attendees for them to take home.
Since this pioneering feat at the 1997 Laser World of Photonics, Clark-MXR has remained a key player in femtosecond laser micromachining, continuing to develop innovative processes and equipment, as well as providing femtosecond laser-based micromachining services to numerous industries.
Please join Clark-MXR at Laser World of Photonics in Munich, booth B2-207, to celebrate the success and the 20th anniversary of commercial femtosecond laser-based micromachining.

Wednesday, May 31, 2017


Catching molecules in the act 





Chemical reactions are characterized by the motion of atoms; transformation of chemical compounds, reactants, and raw materials is therefore governed by molecular vibrations. While the motion of the atoms is easily seen at the beginning and end of a chemical reaction, the molecular changes occur too rapidly in the middle of the process, making them impossible for humans to observe.

With novel techniques that employ the use of ultrafast lasers, however, we can essentially freeze the chemical reaction. This allows us to thoroughly observe the intermediate steps of the chemical reaction that were previously incomprehensible, even permitting control of these reactions. Surface Enhanced Femtosecond stimulated Raman Spectroscopy (SE-FSRS) is one such technique: with SE-FSRS, we are able to study chemical bond-breaking and formation at the femtosecond timescale. (Some perspective: one femtosecond is one millionth of one billionth of a second.)
The research group of Professor Richard Van Duyne at Northwestern University utilized and improved upon the SE-FSRS technique in this study of chemical reaction dynamics. In this research, the experiments were performed at 1 MHz repetition rate using the IMPULSE laser from Clark-MXR, Inc., the first time that the SE-FSRS technique has been used with a laser source running at this repetition rate. The researchers found that the 1 MHz system resulted in several advantages when compared to previous implementations that used lower repetition rate lasers: the 1 MHz system allowed for a lower pulse energy and a minimized sample exposure time, leading to less sample degradation and increased signal to noise. The success of this research has established SE-FSRS as a robust tool for studying molecular dynamics, opening the door to several other potential applications of the technology. 

In their next endeavor, the researchers at Northwestern University are planning to perform time-dependent studies, which will allow them to effectively catch the molecules in their act. 


More information: The original article: Surface-Enhanced Femtosecond Stimulated Raman Spectroscopy at 1 MHz Repetition Rates. Lauren E. Buchanan, Natalie L. Gruenke, Michael O. McAnally, Bogdan Negru, Hannah E. Mayhew, Vartkess A. Apkarian, George C. Schatz and Richard P. Van Duyne.  Appers in J. Phys. Chem. Lett. 2016, 7, 4629−4634 (DOI: 10.1021/acs.jpclett.6b02175)

Monday, January 16, 2017

Innovative Ultrafast Laser Solutions

7300 W. Huron River Dr., Dexter, MI 48130
www.cmxr.com | sales@cmxr.com | (734) 426-2803
Synchronization of a 25 MHz Magellan Yb-doped Fiber Oscillator with a Streak Camera from Optronis    
 
Clark-MXR, Inc. is pleased to announce the first demonstration of a Yb-doped femtosecond fiber oscillator running at 25 MHz successfully synchronized with a Streak camera. This is a result from a collaboration with the companies Optronis GmbH (Dr. Patrick Summ, summ@optronis.com) and Horiba Scientific GmbH (Dr. Hans-Erik Swoboda hans-erik.swoboda@horiba.com) from Europe. The Magellan is a telecom-qualified single emitter diode-pumped Yb-doped femtosecond fiber oscillator. A Streak camera from Optronis, Optoscope SC10, with Synchroscan sweep unit was triggered by the Magellan oscillator and different triggering set-ups were tested for best synchronization conditions and temporal resolutions.
 
This will open up a whole new research area that was unavailable until now to synchronize Yb-doped fiber oscillators with streak cameras at lower repetition rates. Experiments such as direct fluorescence lifetime measurements with high temporal resolution can now be implemented.
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Wednesday, August 10, 2016

Clark-MXR is Laser Institute of America's Featured Member in July

 

An industry leader in Ultrashort Pulse laser based micromachining and the production of ultrafast lasers and laser-based solutions for scientific research and industrial applications, Clark-MXR, Inc. is known for offering unparalleled contract manufacturing services and easy-to-use laser products at a low cost of ownership.

Complete member profile...

Friday, March 18, 2016

Recent publication from KAUST with Model IMPULSE:

Mapping Carrier Dynamics on Material Surfaces in Space and Time using Scanning Ultrafast Electron Microscopy

Jingya Sun, Aniruddha Adhikari, Basamat S. Shaheen, Haoze Yang, and Omar F. Mohammed*
Solar and Photovoltaics Engineering Research Center, Division of Physical Sciences and Engineering, King Abdullah University of Science and Technology, Thuwal 23955-6900, Kingdom of Saudi Arabia


DOI: 10.1021/acs.jpclett.5b02908

ABSTRACT: 

Selectively capturing the ultrafast dynamics of charge carriers on materials surfaces and at interfaces is crucial to the design of solar cells and optoelectronic devices. Despite extensive research efforts over the past few decades, information and understanding about surface-dynamical processes, including carrier trapping and recombination remains extremely limited. A key challenge is to selectively map such dynamic processes, a capability that is hitherto impractical by time-resolved laser techniques, which are limited by the laser’s relatively large penetration depth and consequently these techniques record mainly bulk information. Such surface dynamics can only be mapped in real space and time by applying four-dimensional (4D) scanning ultrafast electron microscopy (S-UEM), which records snapshots of materials surfaces with nanometer spatial and subpicosecond temporal resolutions. In this method, the secondary electron (SE) signal emitted from the sample’s surface is extremely sensitive to the surface dynamics and is detected in real time. In several unique applications, we spatially and temporally visualize the SE energy gain and loss, the charge carrier dynamics on the surface of InGaN nanowires and CdSe single crystal and its powder film. We also discuss the mechanisms for the observed dynamics, which will be the foundation for future potential applications of S-UEM to a wide range of studies on material surfaces and device interfaces.

Wednesday, March 16, 2016


Recent publication with Model IMPULSE from Clark-MXR

Time-resolved photoemission study of the electronic structure and dynamics of chemisorbed alkali atoms on Ru(0001)

Shengmin Zhang, Cong Wang, Xuefeng Cui, Yanan Wang, Adam Argondizzo, Jin Zhao, and Hrvoje Petek
Department of Physics and Astronomy and Pittsburgh Quantum Institute, University of Pittsburgh, & Department of Physics and ICQD/Hefei National Laboratory for Physical Sciences at Microscale, University of Science and Technology of China, Hefei,  China.

DOI: 10.1103/PhysRevB.93.045401

Abstract
We investigate the electronic structure and photoexcitation dynamics of alkali atoms (Rb and Cs) chemisorbed on transition-metal Ru(0001) single-crystal surface by angle- and time-resolved multiphoton photoemission. Three- and four-photon photoemission (3PP and 4PP) spectroscopic features due to the σ and π resonances arising from the ns and np states of free alkali atoms are observed from ∼2 eV below the vacuum level in the zero-coverage limit. As the alkali coverage is increased to a maximum of 0.02 monolayers, the resonances are stabilized by formation of a surface dipole layer, but in contrast to alkali chemisorption on noble metals, both resonances form dispersive bands with nearly free-electron mass. Density functional theory calculations attribute the band formation to substrate-mediated interaction involving hybridization with the unoccupied d bands of the substrate. Time-resolved measurements quantify the phase and population relaxation times in the three-photon photoemission (3PP) process via the σ and π resonances. Differences between alkali-atom chemisorption on noble and transition metals are discussed.

Thursday, February 11, 2016

DNA extraction from geological samples assisted with Clark-MXR femtosecond laser micromachining technology

Traditional techniques used to extract DNA from thin sections of rock samples for amplification and analysis will often introduce contamination from the surrounding material. This is especially true when extracting microscopic inclusion in the presence of nearby unwanted materials. Our femtosecond laser micromachining capability offers a way to address these critical concerns.

This image shows a cylinder machined in a thin layer of a rock. The inclusion is isolated with negligible damage to either the center section or the surrounding area. And so that the trapped bio-matter in the middle of the circle can be analyzed without contamination of adjacent material.*

The Micromachining Job Shop at Clark-MXR has the capability, experience and know-how to help you in daunting tasks such as this one. See www.cmxr.com for more information or contact us at info@cmxr.com.

Friday, January 15, 2016

Clark-MXR will be at Photonics West. 



SPIE Photonics West
16-18 February 2016
San Francisco, California, USA
 
Please see us at Booth No. 3090 to discuss your ultrafast laser and micromachining needs

Thursday, October 8, 2015

Imaging of Carrier Dynamics by Second-Generation 4D Scanning UEM enabled by Model IMPULSE from Clark-MXR. A new publication from Prof. Omar Abdelsaboor group at KAUST

Real-Space Imaging of Carrier Dynamics of Materials Surfaces by Second-Generation Four-Dimensional Scanning Ultrafast Electron Microscopy

Jingya Sun, Vasily A. Melnikov, Jafar I. Khan, and Omar F. Mohammed

Solar and Photovoltaics Engineering Research Center, Division of Physical Sciences and Engineering, King Abdullah University of Science and Technology (KAUST), Thuwal 23955-6900, Kingdom of Saudi Arabia

 Link to the Original Paper

Abstract
In the fields of photocatalysis and photovoltaics, ultrafast dynamical processes, including carrier trapping and recombination on material surfaces, are among the key factors that determine the overall energy conversion efficiency. A precise knowledge of these dynamical events on the nanometer (nm) and femtosecond (fs) scales was not accessible until recently. The only way to access such fundamental processes fully is to map the surface dynamics selectively in real space and time. In this study, we establish a second generation of four-dimensional scanning ultrafast electron microscopy (4D S-UEM) and demonstrate the ability to record time-resolved images (snapshots) of material surfaces with 650 fs and ∼5 nm temporal and spatial resolutions, respectively. In this method, the surface of a specimen is excited by a clocking optical pulse and imaged using a pulsed primary electron beam as a probe pulse, generating secondary electrons (SEs), which are emitted from the surface of the specimen in a manner that is sensitive to the local electron/hole density. This method provides direct and controllable information regarding surface dynamics. We clearly demonstrate how the surface morphology, grains, defects, and nanostructured features can significantly impact the overall dynamical processes on the surface of photoactive-materials. In addition, the ability to access two regimes of dynamical probing in a single experiment and the energy loss of SEs in semiconductor-nanoscale materials will also be discussed.

Tuesday, September 22, 2015

Another publication from Prof. Tony Heinz group with Clark-MXR's Model IMPULSE

Population inversion and giant bandgap renormalization in atomically thin WS2 layers

Alexey Chernikov, Claudia Ruppert, Heather M. Hill, Albert F. Rigosi & Tony F. Heinz

Nature Photonics 9, 466–470 doi:10.1038/nphoton.2015.104

Photoinduced optical response of WS2 monolayers.

Abstract

Control of the optical properties of matter on ultrashort timescales is of both fundamental interest and central importance for applications in photonics. It is desirable to achieve pronounced changes over a broad spectral range using the least possible amount of material. Here, we demonstrate a dramatic change over a spectral range of hundreds of meV on the femtosecond timescale in the optical response of atomically thin two-dimensional crystals of the transition-metal dichalcogenide WS2 following excitation by intense optical pump pulses. Our findings reveal the role of extremely strong Coulomb interactions. At the direct gap, we observe a Mott transition from excitonic states to free carriers, accompanied by a giant bandgap renormalization of approximately 500 meV and the development of population inversion.

Wednesday, September 9, 2015

A new publication from Prof. Tony Heinz group with Model IMPULSE from Clark-MXR. Please contact us for more information on Model IMPULSE and Model iNOPA. 

Observation of Rapid Exciton–Exciton Annihilation in Monolayer Molybdenum Disulfide

Dezheng Sun, Yi Rao, Georg A. Reider, Gugang Chen, Yumeng You, Louis Brézin, Avetik R. Harutyunyan, and Tony F. Heinz



Abstract Image

Monolayer MoS2 is a direct-gap two-dimensional semiconductor that exhibits strong electron–hole interactions, leading to the formation of stable excitons and trions. Here we report the existence of efficient exciton–exciton annihilation, a four-body interaction, in this material. Exciton–exciton annihilation was identified experimentally in ultrafast transient absorption measurements through the emergence of a decay channel varying quadratically with exciton density. The rate of exciton–exciton annihilation was determined to be (4.3 ± 1.1) × 10–2 cm2/s at room temperature.

Link to the original paper

Friday, August 28, 2015

Researchers at University of Bern and co-workers used Clark-MXR Model CPA-Series laser to carry out Laser Ablation/Ionization Mass Spectrometry in the quest to search for extraterrestrial life.

Chemical Composition of Micrometer-Sized Filaments in an Aragonite Host by a Miniature Laser Ablation/Ionization Mass Spectrometer

Marek Tulej, Anna Neubeck, Magnus Ivarsson, Andreas Riedo, Maike B. Neuland, Stefan Meyer, and Peter Wurz


ABSTRACT

normal.img-001.jpg
Detection of extraterrestrial life is an ongoing goal in space exploration, and there is a need for advanced instruments and methods for the detection of signatures of life based on chemical and isotopic composition. Here, we present the first investigation of chemical composition of putative microfossils in natural samples using a miniature laser ablation/ionization time-of-flight mass spectrometer (LMS). The studies were conducted with high lateral (∼15 μm) and vertical (∼20–200 nm) resolution. The primary aim of the study was to investigate the instrument performance on micrometer-sized samples both in terms of isotope abundance and element composition. The following objectives had to be achieved: (1) Consider the detection and calculation of single stable isotope ratios in natural rock samples with techniques compatible with their employment of space instrumentation for biomarker detection in future planetary missions. (2) Achieve a highly accurate chemical compositional map of rock samples with embedded structures at the micrometer scale in which the rock matrix is easily distinguished from the micrometer structures. Our results indicate that chemical mapping of strongly heterogeneous rock samples can be obtained with a high accuracy, whereas the requirements for isotope ratios need to be improved to reach sufficiently large signal-to-noise ratio

Link to the original paper 

Friday, June 12, 2015

Clark-MXR will be at LASER world of Photonics from June 22-25 in Munich, Germany.



 
Please meet our Director of Operations in Europe, Dr. Hans-Erik Swoboda at booth # B2.207 to discuss innovative ultrafast products and services that Clark-MXR has to offer.