Research & Biophotonics Laser Solutions for Scientists & Labs:

User-Friendly, High-Performance Laser Solutions That Speed Discovery and Ensure Your Work Gets Published

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    • RPMC favicon Exact wavelength, pulse width, and jitter your protocol demands – standard or custom-tuned pulsed, CW, and diode lasers to fit your exact needs
    • RPMC favicon We’ll match the right laser to your experiment, so you get the data you need – collaborating with you and our engineers to provide you full support
    • RPMC favicon Thousands of units powering core facilities and Principal Investigators – from imaging & microscopy to spectroscopy, DNA sequencing & beyond
  • RPMC favicon Streamlined lab integration with turn-key plug-and-play options – User-friendly GUIs, remote diagnostics, air-cooling & much more

30 Years Enabling Quality Data Collection to Power Your Next Breakthrough

Show me Research & Biophotonics Laser Sources!

Tackle your toughest research challenges with RPMC’s expertise & lab-ready lasers:

Navigating the Toughest Research Laser Challenges

Scope realigned daily because the beam wanders overnight? RPMC can help:

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  • Budget Crunch
    Every dollar counts – finding high-performance lasers that fit the line-item is brutal
  • Not Sure What You Need
    Hundreds of specs, dozens of vendors – picking the wrong one kills the experiment
  • Spec Sheet Shock
    The datasheet looks perfect – until you discover it needs 3 kV and liquid nitrogen…
  • Trigger-Timing Shortfalls
    Your TCSPC card wants 200 fs jitter from the fs laser; every vendor quotes 2 ps
  • Mode-Hopping Mad
    Lacking stability, the laser temperature drifts and your STED resolution disappears

We get your pain – RPMC provides expert technical guidance from first contact through installation and beyond, modular solutions to fit your budget, remote diagnostics to get you up and running faster, and much more! Tell us about YOUR challenges:

Explore real-world lab Success Stories: RPMC’s solutions drive successful projects

Real-World Success: Laser Solutions for Research Applications

RPMC empowers researchers, from PIs to post-docs and core-facility directors with user-friendly, high-performance laser solutions tailored to your most ambitious experiments. Our 30 years of lab-floor expertise ensure seamless collaboration, from matching the perfect wavelength to custom-tuning pulse width, jitter, or trigger for your protocol. We prioritize publication speed, grant leverage, and zero-hassle integration, delivering lab-proven laser sources that keep your data flowing. With thousands of units powering confocal, STED, optogenetics, and Raman setups worldwide, our end-to-end support, personalized technical guidance, and rapid response times help turn proposals into DOIs.

Our laser solutions power real breakthroughs for research labs like yours:

Research & Biophotonics Success Stories

Broadband Light Source with Flexible Wavelength Selection

RPMC supported cell biologists conducting multi-color fluorescence experiments who were frustrated by the need to constantly swap filter sets or endure slow monochromator scans, which disrupted workflows, bleached sensitive samples, and prevented true simultaneous imaging of multiple cellular structures. RPMC delivered a versatile broadband illumination system paired with a rapid wavelength selector, allowing instant excitation tuning across the spectrum while maintaining high intensity and stability – eliminating mechanical delays and enabling clean, real-time capture of co-localized fluorophores in fixed and live specimens.

Laser Solution: Fiber-delivered broadband light source with flexible wavelength selector, tunable from UV to near-IR, used for multi-color fluorescence imaging.

Outcome: Simplified setups and boosted signal reliability, enabling faster, gentler imaging of live cells and tissues.

Combustion Diagnostics with Quantum Cascade Lasers
brass or gold colored ultra-compact high heat load laser diode package attached to a two-level OEM circuit board module

RPMC and our partners collaborated with combustion researchers who were grappling with the inability of conventional sensors to deliver reliable, real-time data in the extreme heat, pressure, and chemical chaos of flame environments – a classic pain point where interference overwhelms signal and response lags hinder dynamic control. By supplying a robust quantum cascade laser platform tailored for harsh conditions, RPMC enabled the team to push beyond these barriers without compromising sensitivity or stability.

Laser Solution: Fiber-coupled mid-IR quantum cascade laser, tunable with narrow linewidth, used for sensitive absorption spectroscopy.

Outcome: Ensured stable, real-time radical monitoring under harsh conditions, driving progress toward more efficient and lower-emission combustion systems.

Dual-Color Femtosecond Lasers for CARS Microscopy

A team of bio researchers was pursuing label-free lipid imaging in living organisms and tissue sections, but single-wavelength systems failed to target specific vibrational bonds while synchronization drifts degraded coherent signal strength. Utilizing a synchronized dual-output femtosecond laser with fixed and tunable arms optimized for the CH-stretch region, complete with built-in delay compensation for plug-and-play CARS contrast in open-table microscopes.

Laser Solution: Free-space dual-wavelength femtosecond laser, one fixed and one tunable in the near-IR with temporal overlap, used for coherent anti-Stokes Raman scattering (CARS).

Outcome: Facilitated high-specificity, non-invasive visualization of lipids and molecular distributions, advancing metabolic and neurological studies in model organisms and human samples.

Femtosecond Lasers for Deep-Tissue Multiphoton Microscopy
FSX ultra low noise wavelength tunable femtosecond laser

A group of neuroscientists were imaging awake animals and large cleared organs, where conventional confocal systems suffered from shallow penetration, high photodamage, and inability to capture label-free structural signals in thick samples. The team integrated a turnkey femtosecond source enabling multimodal nonlinear excitation—including two-photon fluorescence, SHG, and THG—paired with tissue-clearing compatibility and wide working distance objectives for macro-to-micro versatility.

Laser Solution: Free-space femtosecond laser, tunable in the near-IR with ultrashort pulses, used for multiphoton and harmonic generation microscopy.

Outcome: Unlocked deep, non-destructive 3D/4D imaging with reduced phototoxicity, revealing functional and structural biomarkers across scales in live and fixed specimens.

High-Energy Sub-Nanosecond DPSS Lasers for LIBS and Ablation
sleek modern light grey Nanosecond DPSS laser Quantas-Q-SPARK-1064

RPMC partnered with materials scientists performing laser-induced breakdown spectroscopy (LIBS) on challenging alloys, where insufficient pulse energy produced weak plasma emission and inconsistent elemental signatures under ambient conditions. RPMC delivered an air-cooled, high-peak-power DPSS laser with innovative end-pumping and optional harmonics, ensuring stable, high-quality beams without water chilling or frequent diode replacements even during prolonged field campaigns.

Laser Solution: Free-space diode-pumped solid-state laser, sub-nanosecond to nanosecond pulses from UV to near-IR with high energy per pulse, used for plasma generation in LIBS and ablation.

Outcome: Enabled robust, low-maintenance spectral analysis in remote or harsh settings, supporting reliable material identification and process monitoring.

High-Rep-Rate Tunable OPO for Raman and Remote Sensing
Q-TUNE-HR: Tunable DPSS laser/OPO

RPMC assisted environmental researchers deploying standoff detection systems who needed wavelength scanning across broad mid-IR gaps but were limited by sluggish manual tuning and pump laser incompatibilities in portable setups. RPMC supplied a fully automated, high-repetition-rate OPO with microprocessor-controlled alignment and bypass access to the pump line, allowing hands-free operation from any web interface while fitting into compact, air-cooled enclosures.

Laser Solution: Free-space optical parametric oscillator (OPO), broadly tunable in the near-IR with high repetition rate, used for vibrational spectroscopy and remote sensing.

Outcome: Provided seamless, remote-managed spectral agility in field-deployable systems, improving real-time pollutant tracking and standoff analysis efficiency.

Nanosecond Lasers for Neural Modulation
gray and red compact nanosecond pulsed DPSS laser housing One by Bright Solutions

RPMC worked alongside neuroscientists pursuing minimally invasive optical control of brain circuits, but conventional pulse durations either overheated tissue or failed to generate sufficient acoustic waves—leaving a narrow window for safe, effective stimulation (photoacoustic vs photothermal stimulation) that most off-the-shelf lasers couldn’t hit. RPMC provided a precisely engineered DPSS source that balanced peak power and thermal confinement, giving the lab confidence to scale from in vitro to in vivo models without protocol rework.

Laser Solution: Free-space near-IR nanosecond laser with high peak power and ultrashort pulses, used for photoacoustic neural activation.

Outcome: Provided precise, low-heat stimulation with excellent targeting, enhancing safety and repeatability in neural circuit mapping.

QCL Technology for Decarbonization & Alternative Fuels

A team of energy researchers developing hydrogen and ammonia combustion systems faced major hurdles in detecting trace emission species at ultra-low concentrations within turbulent, high-pressure gas flows—creating a critical roadblock to validating carbon-free fuel performance under real engine conditions. By deploying mid-infrared quantum cascade lasers with high-speed pulsing and robust environmental packaging, the group achieved stable, real-time absorption measurements even at extreme temperatures, eliminating interference and enabling precise kinetic modeling without invasive sampling.

Laser Solution: Fiber-coupled tunable quantum cascade laser in the mid-IR, narrow linewidth with high-speed pulsing, used for real-time emission and composition analysis.

Outcome: Delivered reliable sub-part-per-million sensitivity in dynamic environments, supporting optimized fuel blending and reduced carbon impact.

Tunable Laser Systems for Spectral Imaging
SL-Pico: White Light Picosecond Supercontinuum Laser

RPMC assisted a hyperspectral imaging team bogged down by broadband lamps that delivered uneven intensity and required constant recalibration, turning what should have been routine chemical mapping into hours of troubleshooting and compromised datasets. RPMC introduced a turnkey tunable platform that locked in wavelength accuracy and power stability, transforming slow, noisy scans into fast, publication-ready spectral imaging results across diverse samples from semiconductors to biological tissues.

Laser Solution: Free-space tunable laser system with narrow linewidth across visible to near-IR, used for high-resolution hyperspectral imaging.

Outcome: Enabled fast, clear chemical mapping with minimal noise, improving efficiency in microscopy and material analysis workflows.

Ultrafast Tunable Lasers for Nonlinear Spectroscopy
NPS: Narrowband Picosecond Mode-Locked Laser

RPMC partnered with a multidisciplinary research group frustrated by bulky, inflexible laser systems that forced lengthy setup changes and introduced variability during wavelength-critical nonlinear experiments—issues that routinely delayed data collection and eroded confidence in spectral fidelity. RPMC delivered a compact, user-friendly picosecond pulsed DPSS solution that integrated seamlessly into existing optical benches, restoring momentum to time-sensitive studies in vibrational imaging and molecular dynamics.

Laser Solution: Free-space femtosecond laser, broadly tunable in the near-IR with ultrashort pulses and high repetition rate, used for label-free vibrational spectroscopy.

Outcome: Streamlined rapid spectral scanning with consistent performance, accelerating breakthroughs in biomolecular and materials research.

RPMC has provided laser sources for many successful Research & Biophotonics applications:

RPMC’s success is driven by our dedicated team & the invaluable support of our skilled & innovative manufacturers.

Explore our wide range of laser technology, powering those Research Success Stories


Key Laser Products for Your Research Needs


RPMC’s hand-picked portfolio of precision lasers fuels your next breakthrough—from single-molecule imaging to high-speed spectroscopy—delivering clean, repeatable data with minimal bench-time tweaks.

Our lab-ready lineup spans low-noise CW diodes to femtosecond fiber systems, seed modules, tunable OPOs, and compact amplifiers, all built for drop-in use with your existing microscope, flow cytometer, or custom breadboard.

Dive into the research laser groups below, each tied to core biophotonics techniques, with on-the-fly adjustments for linewidth, rep-rate, trigger jitter, and beam profile—dialed in to match your grant proposal line-for-line.

 

Application Group Application Supporting Laser Categories
Imaging & Analysis
  • Fluorescence Lifetime
  • Maldi-ToF
  • Particle Image Velocimetry (PIV)
  • Confocal Fluorescence Microscopy
  • Flow Cytometry
  • STED Microscopy
  • Lightsheet Microscopy
  • Two-Photon/Multi-Photon Microscopy
  • Optical Coherence Tomography
Spectroscopy & Analysis
  • Laser-Induced Breakdown Spectroscopy
  • Nonlinear Spectroscopy
  • Raman Spectroscopy
  • Infrared Absorption Spectroscopy
  • Photoluminescence
  • Laser-Induced Fluorescence
  • Fourier-Transform Infrared Spectroscopy
  • Resonance-Enhanced Multi-Photon Ionization
Measurement & Analysis
  • Dynamic Light Scattering
  • Differential Absorption LIDAR
  • Laser Doppler Velocimetry
  • Particle Measurement
  • Gas Sensing
  • Raman Spectroscopy
  • Interferometry
Molecular Manipulation & Analysis
  • DNA Sequencing
  • Optogenetics
  • Optical Trapping/Laser Tweezers
  • Laser Microdissection

Custom Research & Biophotonics Laser Solutions:

Wafers to Components, Breadboard, and Turn-Key Rack-Mount Systems

Despite providing > 10,000 standard SKUs, your next DOI often demands a one-off. Our world-class partners will collaborate with you to define specifications and help you get the exact right solution, tailored to the unique needs of your specific application.

Tailored Laser Solutions for:

•  Confocal & STED Super-Resolution  •  FLIM & FCS Lifetime Mapping  •  Optogenetics & FRAP  •  Raman & CARS Spectroscopy  •  LIBS & MALDI-TOF  •  PIV & LDV Flow Imaging  •  Optical Tweezers & DNA Origami  •  Fiber-Seeded OPA/OPG Chains  •

custom lasers and text illustrating our ability to fully customize a laser solution

Learn More About RPMC’s Customization Capabilities

See why PIs trust RPMC for their next publication


RPMC is a Leading Supplier for Your Research Laser Solutions


RPMC at a Glance:

  • RPMC favicon 30 years in labs
    RPMC favicon 10,000+ standard lasers
    RPMC favicon 1000s of units in core facilities
    RPMC favicon Industry-leading laser sources
    RPMC favicon Endless customization options
    RPMC favicon Personalized support
    RPMC favicon Flexible & agile – no red tape
    RPMC favicon US-Made options
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    “RPMC provided the critical light source we needed to get our research published!”

    ~YOUR Name Here (IF you Contact Us!)


Small Enough to Care, Big Enough to Deliver

For 30 years, RPMC has powered confocal fluorescence microscopy to Raman spectroscopy in universities and national labs across the US. Our lab-experienced team, supported by leading engineering partners, helps you move from initial wavelength selection to final trigger integration, with modular laser solutions that fit your existing breadboard or core-facility setup.

We address common research hurdles, providing lab-proven configurable lasers to fit your budget, tailored with the right specifications that support reliable data collection, no matter what application you’re working with.

As a responsive, agile small business, we deliver expert-level guidance, grant-ready quotes, and direct access to manufacturer expertise for streamlined integration support to keep your experiments running smoothly and your publications on track.

RPMC is your lab’s trusted laser partner for advancing scientific discovery.

Learn More About Research & Biophotonics Lasers: Blogs & FAQs

Component FAQs

Can I operate multiple laser diodes from the same power supply?

Can I operate multiple laser diodes from the same power supply?

The same power supply can drive multiple laser diodes if they are connected in series, but they must never be connected in parallel. When two diodes are connected in series, they will function properly as long as the compliance voltage is large enough to cover the voltage drop across each diode. For example, suppose you are trying to power two diode lasers, each with an operating voltage of 1.9 V, and connect the two in series. In that case, the pulsed or CW laser driver must have a total voltage capacity greater than 3.8 V. This configuration works because diodes share the same current when connected in series. In contrast, when two diodes are connected in parallel, the current is no longer shared between the two diodes. Get more details on the topic in this article: “Can I Operate Multiple Laser Diodes From the Same Power Supply?” Get more information from our Lasers 101, Blogs, Whitepapers, FAQs, and Press Release pages in our Knowledge Center!

Can laser diodes emit green, blue, or UV light?

Can laser diodes emit green, blue, or UV light?

The output wavelength of a semiconductor laser is based on the difference in energy between the valance and conduction bands of the material (bandgap energy). Since the energy of a photon is inversely proportional to its wavelength, this means that a larger bandgap energy will result in a shorter emission wavelength. Due to the relatively wide bandgap energy of 3.4 eV, gallium nitride (GaN) is ideal for the production of semiconductor optoelectronic devices, producing blue wavelength light without the need for nonlinear crystal harmonic generation. Since the mid-’90s, GaN substrates have been the common material utilized for blue LEDs. In recent years, GaN based laser technology has provided blue, green and UV laser diodes, now available in wavelengths from 375 nm to 521 nm, with output powers exceeding 100 watts. Read our article, titled “Gallium Nitride (GaN) Laser Diodes: Green, Blue, and UV Wavelengths” to learn more about GaN Based Laser Diodes, available through RPMC. Get more information from our Lasers 101, Blogs, Whitepapers, and FAQs pages in our Knowledge Center!

How long will a laser diode last?
How long will a laser diode last?

Honestly, it depends on several factors, and there is no simple chart to cover everything. Typical diode lifetimes are in the range of 25,000 to 50,000 hours. Though, there are lifetime ratings outside this range, depending on the configuration. Furthermore, there are a wide range of degradation sources that contribute to a shorter lifespan of laser diodes. These degradation sources include dislocations that affect the inner region, metal diffusion and alloy reactions that affect the electrode, solder instability (reaction and migration) that affect the bonding parts, separation of metals in the heatsink bond, and defects in buried heterostructure devices. Read more about diode lifetime and contributing factors in this article: “Understanding Laser Diode Lifetime.” Get more information from our Lasers 101, Blogs, Whitepapers, FAQs, and Press Release pages in our Knowledge Center!

What factors affect the lifetime of laser diodes?
What factors affect the lifetime of laser diodes?

There are a great many factors that can increase or decrease the lifetime of a laser diode. One of the main considerations is thermal management. Mounting or heatsinking of the package is of tremendous importance because operating temperature strongly influences lifetime and performance. Other factors to consider include electrostatic discharge (ESD), voltage and current spikes, back reflections, flammable materials, noxious substances, outgassing materials (even thermal compounds), electrical connections, soldering method and fumes, and environmental considerations including ambient temperature, and contamination from humidity and dust. Read more about these critical considerations and contributing factors in this article: “How to Improve Laser Diode Lifetime: Advice and Precautions on Mounting.” Get more information from our Lasers 101, Blogs, Whitepapers, FAQs, and Press Release pages in our Knowledge Center!

What is a laser diode?
What is a laser diode?

A Laser Diode or semiconductor laser is the simplest form of Solid-State Laser. Laser diodes are commonly referred to as edge emitting laser diodes because the laser light is emitted from the edge of the substrate. The light emitting region of the laser diode is commonly called the emitter. The emitter size and the number of emitters determine output power and beam quality of a laser diode. Electrically speaking, a laser diode is a PIN diode. The intrinsic (I) region is the active region of the laser diode. The N and P regions provide the active region with the carriers (electrons and holes). Initially, research on laser diodes was carried out using P-N diodes. However, all modern laser diodes utilize the double-hetero-structure implementation. This design confines the carriers and photons, allowing a maximization of recombination and light generation. If you want to start reading more about laser diodes, try this whitepaper “How to Improve Laser Diode Lifetime.” If you want to read more about the Laser Diode Types we offer, check out the Overview of Laser Diodes section on our Lasers 101 Page!

What is the difference between laser diodes and VCSELs?
What is the difference between laser diodes and VCSELs?

Laser Diodes and VCSELs are semiconductor lasers,  the simplest form of Solid State Lasers.  Laser diodes are commonly referred to as edge emitting laser diodes because the laser light is emitted from the edge of the substrate. The light emitting region of the laser diode is commonly called the emitter.  The emitter size and the quantity of emitters determine output power and beam quality of a laser diode. These Fabry Perot Diode Lasers with a single emission region (Emitter) are typically called laser diode chips, while a linear array of emitters is called laser diode bars. Laser diode bars typically use multimode emitters, the number of emitters per substrate can vary from 5 emitters to 100 emitters. VCSELs (Vertical Cavity Surface Emitting Laser) emit light perpendicular to the mounting surface as opposed to parallel like edge emitting laser diodes.  VCSELs offer a uniform spatial illumination in a circular illumination pattern with low speckle. If you want to read more about lasers in general, and help narrowing down the selection to find the right laser for you, check out our Knowledge Center for our Blogs, Whitepapers, and FAQ pages, as well as our Lasers 101 Page!VCSEL

What’s the difference between single transverse mode & single longitudinal mode?

What’s the difference between single transverse mode & single longitudinal mode?

Within the laser community, one of the most overused and often miscommunicated terms is the phrase “single mode.”  This is because a laser beam when traveling through air takes up a three-dimensional volume in space similar to that of a cylinder; and just as with a cylinder, a laser beam can be divided into independent coordinates each with their own mode structure.  For a cylinder we would call these the length and the cross-section, but as shown in the figure below for a laser beam, we define these as the transverse electromagnetic (TEM) plane and the longitudinal axis.   Both sets of modes are fundamental to the laser beam’s properties, since the TEM modes determine the spatial distribution of the laser beams intensity, and the longitudinal modes determine the spectral properties of the laser.  As a result, when a laser is described as being “single-mode” first you need to make sure that you truly understand which mode is being referred to.  Meaning that you must know if the laser is single transverse mode, single longitudinal mode, or both. Get all the information you need in this article: “What is Single Longitudinal Mode?” Get more information from our Lasers 101, Blogs, Whitepapers, FAQs, and Press Release pages in our Knowledge Center!

CW Lasers FAQs

How do I align my optical system?

How do I align my optical system?

Laser alignment can be a challenging task, but aligning a laser beam doesn’t have to be as complicated as it might seem with the right optical alignment tools and proper laser alignment techniques. Multiple optical alignment techniques have been developed over the years, utilized by technicians and engineers to simplify the alignment process. With the development of these universal laser beam alignment methods, along with some laser alignment tips and tricks, you don’t need to be a laser expert to perform your alignments with relative ease, ensuring your laser beam path is right where you want it to be and your beam is on target every time. Read our article, titled “Laser Alignment: HeNe Lasers, Methods, and Helpful Tips” to get the knowledge and advice you need for proper optical beam path alignment utilizing HeNe Lasers. Get more information from our Lasers 101, Blogs, Whitepapers, FAQs, and Press Release pages in our Knowledge Center!

Should I choose multimode or single-mode for Raman spectroscopy?
Should I choose multimode or single-mode for Raman spectroscopy?

On the surface, this seems like a simple question since Raman is a nonlinear optical effect and therefore the tighter the beam can be focused the higher the conversion efficiency.  Seemingly a single-mode laser would be preferable, but in practice there are other factors that can complicate the situation. The first question you should ask yourself when considering which type of laser to choose is whether you are doing microscopy or bulk sampling.  If the answer to that question is microscopy, then you immediately should go with a single mode laser.  Since the goal of any microscopy system is to produce the highest resolution image possible, the number one consideration should be how tightly can the laser beam be focused down. However, there are several other considerations when choosing between multimode and single-mode. Learn which is best for you in this article: “Multimode vs Single-Mode Lasers for Raman Spectroscopy.” Get more information from our Lasers 101, Blogs, Whitepapers, FAQs, and Press Release pages in our Knowledge Center!

What is a CW Laser?
What is a CW Laser?

A CW or continuous-wave laser is any laser with a continuous flow of pump energy. It emits a constant stream of radiation, as opposed to a q-switched or mode-locked pulsed laser with a pulsed output beam. A laser is typically defined as having a pulse width greater than 250 ms. The first CW laser was a helium-neon (HeNe) gas laser, developed in 1960, which you can read more about in this blog “HeNe Lasers: Bright Past, Brighter Future.” If you want to read more about the types of CW Lasers we offer, check out the Overview of CW Lasers section on our Lasers 101 Page!

What is the best laser for optical surface flatness testing?
What is the best laser for optical surface flatness testing?

It is essential that the laser exhibit a high level of spectral stability, ensuring that any changes in the interference pattern are caused by features in the sample and not originating from the laser beam. In addition to spectral stability, high beam pointing stability ensures consistent measurements by mitigating any beam position drift concerning the position of the sample. Lasers with longer coherence lengths, and subsequently narrower linewidths, play an important role in determining the resolution of the measurement, as well as consideration of the wavelength used. Exhibiting both single longitudinal mode and single spatial mode has excellent benefits. Get more information from our Lasers 101, Blogs, Whitepapers, FAQs, and Press Release pages in our Knowledge Center!

What type of laser is best for Doppler LIDAR?

What type of laser is best for Doppler LIDAR?

Various LIDAR signal methods for measuring velocity have one critical requirement in common, the need for precise control over laser frequency. While a wide variety of single-frequency lasers have been used in Doppler LIDAR research, the industry as a whole has adopted single-frequency fiber lasers as the ideal light source. Fiber lasers have several advantages over traditional DPSS lasers, all of which derive from the geometry of the fiber optic itself, namely the innate ability to have an extremely long single-mode optical cavity. This geometry allows for the production of either extremely high-power, single-mode lasers producing unprecedented brightness, or extremely narrow band lasers, with near perfect single-frequency output. If you want to learn more about Doppler LIDAR, the critical considerations involved, and ideal laser sources, check out this whitepaper: “Single-Frequency Fiber Lasers for Doppler LIDAR.” Get more information from our Lasers 101, Blogs, Whitepapers, FAQs, and Press Release pages in our Knowledge Center!

What’s the difference between single transverse mode & single longitudinal mode?

What’s the difference between single transverse mode & single longitudinal mode?

Within the laser community, one of the most overused and often miscommunicated terms is the phrase “single mode.”  This is because a laser beam when traveling through air takes up a three-dimensional volume in space similar to that of a cylinder; and just as with a cylinder, a laser beam can be divided into independent coordinates each with their own mode structure.  For a cylinder we would call these the length and the cross-section, but as shown in the figure below for a laser beam, we define these as the transverse electromagnetic (TEM) plane and the longitudinal axis.   Both sets of modes are fundamental to the laser beam’s properties, since the TEM modes determine the spatial distribution of the laser beams intensity, and the longitudinal modes determine the spectral properties of the laser.  As a result, when a laser is described as being “single-mode” first you need to make sure that you truly understand which mode is being referred to.  Meaning that you must know if the laser is single transverse mode, single longitudinal mode, or both. Get all the information you need in this article: “What is Single Longitudinal Mode?” Get more information from our Lasers 101, Blogs, Whitepapers, FAQs, and Press Release pages in our Knowledge Center!

Pulsed Lasers FAQs

What is a Pulsed Laser?
What is a Pulsed Laser?

A pulsed laser is any laser that does not emit a continuous-wave (CW) laser beam. Instead, they emit light pulses at some duration with some period of ‘off’ time between pulses and a frequency measured in cycles per second (Hz). There are several different methods for pulse generation, including passive and active q-switching and mode-locking. Pulsed lasers store energy and release it in these pulses or energy packets. This pulsing can be very beneficial, for example, when machining certain materials or features. The pulse can rapidly deliver the stored energy, with downtime in between, preventing too much heat from building up in the material. If you would like to read more about q-switches and the pros and cons of passive vs active q-switches, check out this blog “The Advantages and Disadvantages of Passive vs Active Q-Switching,” or check out our Overview of Pulsed Lasers section on our Lasers 101 Page!

What is the best laser for LIDAR?

What is the best laser for LIDAR?

There are actually numerous laser types that work well for various LIDAR and 3D Scanning applications. The answer comes down to what you want to measure or map. If your target is stationary, and distance is the only necessary measurement, short-pulsed lasers, with pulse durations of a few nanoseconds (even <1ns) and high pulse energy are what you’re looking for. This is also accurate for 3D scanning applications (given a stationary, albeit a much closer target), but select applications can also benefit from frequency-modulated, single-frequency (narrow-linewidth) fiber lasers. If your target is moving, and speed is the critical measurement, you need a single-frequency laser to ensure accurate measurement of the Doppler shift. If you want to learn more about the various forms of LIDAR and the critical laser source requirements, check out our LIDAR page for a list of detailed articles, as well as all the LIDAR laser source products we offer. Get more information from our Lasers 101, Blogs, Whitepapers, FAQs, and Press Release pages in our Knowledge Center!

What is the best laser for tattoo removal?

What is the best laser for tattoo removal?

The best laser for tattoo removal depends on factors like wavelength versatility, pulse duration, and energy output to effectively target various ink colors while minimizing skin damage. Q-switched or ultrafast lasers with pulse durations of 100 ps to 10 ns and a fluence of ~10 J/cm² are ideal for fragmenting ink via selective photothermolysis. For example, the Lampo 266-1064 nm offers multiple wavelengths (266 nm, 532 nm, 1064 nm) for multi-color tattoos, while the Nimbus 770-1064 nm provides customizable sub-nanosecond pulses for precision. The Quantas-Q1 delivers high pulse energy (up to 32 mJ at 1064 nm) for efficient treatments.

For more details on pulsed lasers for tattoo removal applications, see our blog, “Choosing the Right Laser for Tattoo Removal: Key Considerations‘! Get more information from our Lasers 101, Blogs, Whitepapers, and FAQ pages in our Knowledge Center!

We’re here to offer expert advice & to you help select the right laser for your application.
Contact Us Here or email us at info@rpmclasers.com!

What is the difference between active and passive q-switching?
What is the difference between active and passive q-switching?

There are a wide variety of q-switch technologies, but the technique as a whole can be broken down into two primary categories of q-switches, passive and active. Active q-switches could be a mechanical shutter device, an optical chopper wheel, or spinning mirror / prism inside the optical cavity, relying on a controllable, user set on/off ability. Passive q-switches use a saturable absorber, which can be a crystal (typically Cr:YAG), a passive semiconductor, or a special dye, and automatically produce pulses based on it’s design. Both passive and active q-switching techniques produce short pulses and high peak powers, but they each have their pros and cons. When choosing between actively q-switched and passively q-switched lasers, the key is to understand the tradeoffs between cost/size and triggering/energy and decide which is best for your particular application. Read more about these tradeoffs in this article: “The Advantages and Disadvantages of Passive vs Active Q-Switching.” Get more information from our Lasers 101, Blogs, Whitepapers, FAQs, and Press Release pages in our Knowledge Center!

What type of laser is used for LIBS?
What type of laser is used for LIBS?

A laser source used for LIBS must have a sufficiently large energy density to ablate the sample in as short a time possible. Typically, pulsed DPSS lasers take center stage here. However, it’s been shown that pulsed fiber lasers can also be a great option. For example, you could utilize fiber lasers to measure detection limits as low as micrograms per gram (µg/g) for many common metals and alloys, including aluminum, lithium, magnesium, and beryllium. Analytical performances showed to be, in some cases, close to those obtainable with a traditional high-energy Nd:YAG laser. The beam quality of fiber lasers, in conjunction with longer pulse widths, resulted in significantly deeper and cleaner ablation craters. If you want to learn more about LIBS and ideal laser sources, check out either this blog: “OEM Fiber Lasers for Industrial Laser Induced Breakdown Spectroscopy,” or this blog: “Laser Induced Breakdown Spectroscopy (LIBS) in Biomedical Applications.” Get more information from our Lasers 101, Blogs, Whitepapers, FAQs, and Press Release pages in our Knowledge Center!

Which IR laser is best for laser target designation?
Which IR laser is best for laser target designation?

There are many different types of laser designation systems used by the military today. Still, they all share the same basic functionality and outcome. At a glance, the laser requirements seem relatively straightforward. The laser needs to be invisible to the human eye, and it needs to have a programmable pulse rate. Still, when you look in more detail, many small factors add up to big problems if not appropriately addressed. Excellent divergence and beam pointing stability, low timing jitter, and rugged, low SWaP design are all critical features of a good laser designation source. Read more on these critical features in this article: “What are the Critical Laser Source Requirements for Laser Designation?” Get more information from our Lasers 101, Blogs, Whitepapers, FAQs, and Press Release pages in our Knowledge Center!