Custom Tattoo Removal Machine Laser Factory & Global OEM/ODM Solutions

Pioneering high-power optoelectronic diode stacks and solid-state laser systems. Engineered for precision aesthetic systems and medical dermatological application architectures.

High-Power Diode Stacks & Pump Modules

Premium optoelectronic sub-assemblies engineered specifically for medical-grade aesthetic devices, system integration, and critical machinery restorations.

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Custom Factory 3500W 808nm 70Bars with FAC Lens HSW

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Xi'an Prima Beauty Equipment Co., Ltd. Manufacturing Facility

Pioneering Medical & Aesthetic Laser Engineering

Xi'an Prima Beauty Equipment Co., Ltd. is a global leader in high-performance solid-state laser engines and diode systems.

With over 10 years of specialized manufacturing experience, our enterprise integrates deep optical R&D, structural design, and vertical packaging pathways to supply medical spa networks, system integrators, and clinical operators with robust laser engines.

Our operational framework encompasses vertical diode assembly arrays, solid-state Q-switched Nd:YAG system alignments, and multi-wavelength laser technologies designed for maximum photothermal and photoacoustic energy delivery. From high-capacity diode stacks (up to 3500W) to clinical-grade tattoo removal laser systems, we ensure complete control over optical output, safety margins, and long-term chassis durability.

10+
Years R&D Excellence
3,500W
Peak Optical Output Power
150+
Global Machinery Distributors
100%
LIV Optoelectronic Tested

Technical Competence & OEM Ecosystem

Why Tier-1 global distributors and system builders select our high-density solid-state lasers and semiconductor diode assemblies.

Advanced Optoelectronics

Our facilities house dedicated cleanrooms for laser chip packaging, automated bar alignments, and Fast Axis Collimation (FAC) lens integration. By incorporating robust Micro-Channel Cooler (MCC) and Macro-Channel Cooler (MCM) dynamics, we guarantee stable thermal profiles under prolonged operational cycles.

Zero-Defect Quality Control

Every laser diode stack and solid-state Nd:YAG cavity undergoes rigorous optoelectronic verification, including Light-Current-Voltage (LIV) testing, beam profile characterization, and continuous high-temperature aging cycles. This ensures stable power density and uniform energy distribution across every pulse.

Comprehensive OEM/ODM

We provide full-spectrum customized engineering. Our capabilities cover specialized mechanical dimensions, customized diode stack stack sizes, multiple wavelength selections (755nm, 808nm, 940nm, 1064nm), and tailored power configurations up to 3500W to fit your proprietary system enclosures.

Industry Certification & Compliance Standards

Our manufacturing pipelines conform to international medical device and quality management framework standards.

Technical Roadmap & Future Outlook

The transformation of tattoo removal technology from nanosecond Q-Switched thermal release models to ultra-short picosecond photoacoustic shattering paradigms.

Evolution of Energy Delivery Dynamics

Historically, Q-switched Nd:YAG lasers operated within the nanosecond pulse width range (typically 5ns to 10ns). While effective for basic ink dispersion, the dominant mechanism was photothermal, exposing the surrounding cellular matrix to thermal diffusion and increasing the risk of hyperpigmentation and scarring.

Modern systems utilize picosecond pulse widths (ranging from 450ps to 750ps). This extremely fast pulse width minimizes thermal diffusion and utilizes the photoacoustic shockwave effect. The targeted tattoo pigment particles are instantly fractured into micro-dust format without transferring damaging heat to the surrounding skin tissue, allowing the lymphatic system to clear the ink faster.

By using highly aligned diode-pumping schemes, modern solid-state laser engines achieve high pulse stability, uniform beam profiles, and longer system lifespans compared to traditional flashlamp-pumped systems.

Key Optoelectronic Metrics to Monitor:

  • Wavelength Configurations: 1064nm (deep pigments like black/blue), 532nm (warm tones like red/orange), 755nm (green/sky blue targets).
  • M2 Beam Quality Factor: Keeping the M2 value close to 1.1 ensures clean energy distribution without hot spots.
  • Pulse-to-Pulse Stability: Active feedback loops in the laser driver minimize energy fluctuations to less than 2%.
  • Cooling Architecture: Gold-tin (AuSn) bonding paired with Micro-Channel cooling prevents thermal degradation of the optical emitters.

Phase I: Nanosecond Flashlamp Systems

Traditional Xenon-lamp excited solid-state lasers with wide pulse profiles. These systems had high maintenance overheads and elevated thermal transfer rates.

Phase II: Diode-Pumped Solid-State (DPSS) Systems

Transition to semiconductor diode-pump modules. This transition reduced heat generation, decreased the physical footprint of the laser, and improved electro-optical conversion efficiency.

Phase III: True Picosecond Shockwave Era

Deploying sub-nanosecond pulse width technology to trigger photoacoustic ink fracturing, resulting in fewer treatment sessions and higher efficacy on stubborn pigments.

Phase IV: Intelligent Spectral Tuning

Next-generation designs feature automated wavelength selection, integrated optical fiber delivery systems, and real-time skin impedance monitoring for dynamic energy adjustments.

Macro Industry Solutions

Comprehensive laser architectures tailored to the operational demands of medical clinic chains, OEM system integrators, and independent practitioners.

Clinical Franchise Integration

For large-scale medical spas, system consistency is vital. Our laser modules are designed with standardized digital interfaces, allowing franchise networks to deploy uniform treatment protocols across multiple branches with high calibration stability.

OEM Laser Chassis Supply

We supply turnkey optoelectronic platforms for aesthetic equipment brands. This includes the mechanical chassis, driver electronics, water cooling manifolds, and solid-state Nd:YAG cavity configurations, allowing brands to focus on exterior design and software interfaces.

High-Yield Spare Parts Support

We assist laser repair technicians by supplying pin-to-pin compatible replacement diode stacks, optical rods, and Q-switches. Our replacement components extend the operational lifespan of existing systems and reduce repair costs.

China Factory 4.0: Manufacturing Excellence

Combining automated production lines with highly skilled assembly techniques to ensure reliable laser manufacturing.

Our modern manufacturing facility utilizes automated optical positioning systems, robotic wire bonders, and precise component placing machinery. By automating critical processes in our cleanrooms, we minimize contamination risks and achieve excellent uniformity across all produced laser bars.

Our vertical integration strategy covers the entire process from raw material procurement to custom optoelectronic assembly. This close oversight allows us to manage manufacturing timelines efficiently, adapt to design changes, and maintain price stability without compromising on quality.

We partner with top-tier optical crystal suppliers and electronic component manufacturers. These strong supply chain links ensure a steady flow of raw materials, keeping our production lines running and enabling us to fulfill high-volume orders reliably.

High-tech optoelectronic testing laboratory and measurement devices

Global Enterprise Procurement Demands

Key technical parameters, regulatory compliance, and support systems required by international medical and cosmetic device distributors.

Compliance

We provide full documentation support including CE certifications, safety test reports, and factory conformance statements to help distributors navigate local import requirements and medical clearances.

Custom Configurations

We customize physical laser configurations, connector styles, driver electronics, and wavelength combinations to match the design specifications of your aesthetic platforms.

Long-Term Reliability

Our laser systems are designed for high duty cycles. Using high-efficiency heat exchangers and durable diode bars, our systems are built to deliver millions of pulses before requiring refurbishment.

Technical Training

We offer extensive technical training materials, integration guides, and direct support lines to assist engineering teams during installation, system testing, and field maintenance.

Localization Support & Compliance Assurance

Global regulatory compliance is central to our design, manufacturing, and distribution workflows.

Regulatory Alignment Matrix

To support global market access, our systems and modules undergo systematic validation tests:

  • EN 60601-1: Medical electrical equipment safety validation.
  • EN 60601-2-22: Specific safety regulations for medical diagnostic and therapeutic laser equipment.
  • RoHS & WEEE: Environmental material declaration for electronics components.

Our production facilities maintain strict cleanliness controls, preventing particulate contamination during optical assembly and wire bonding processes.

Global Technical & Logistics Support

To support our international distributors, we provide integrated technical and logistics support systems:

  • Rapid Response Support: Direct communication channels with our design engineers to assist with system integration.
  • Field Replacement Units (FRU): Fast dispatch of replacement laser stacks, cooling modules, and optics to minimize system downtime.
  • Detailed Documentation: Comprehensive technical datasheets, integration diagrams, and maintenance instructions for service teams.

These support systems ensure our partners can confidently integrate and maintain our laser modules across their customer base.

Technical & Procurement FAQ

In-depth technical answers addressing common inquiries from optical system engineers, procurement officers, and clinic managers.

Q1: What is the core difference between picosecond and nanosecond laser engines?
Nanosecond systems rely primarily on photothermal energy delivery, transferring heat to ink particles to break them down. Picosecond engines use ultra-short pulses to trigger photoacoustic shockwaves, fracturing ink pigments into finer particles with minimal thermal transfer to surrounding skin tissue, reducing recovery times.
Q2: Why are micro-channel coolers (MCC) preferred over macro-channel coolers (MCM) for high-density stacks?
Micro-channel coolers use narrow, etched fluid pathways positioned close to the active semiconductor junctions, offering high heat dissipation rates. This design allows for higher duty cycles and protects the laser array from thermal breakdown during high-energy outputs.
Q3: Can your diode modules be configured for custom wavelengths?
Yes, we provide customized wavelength configurations. We offer single, dual, or multi-wavelength combinations (including 755nm, 808nm, 940nm, and 1064nm) integrated into a single vertical stack, enabling treatment flexibility for different skin types and pigments.
Q4: What packaging technologies are used to ensure laser bar longevity?
We use Gold-Tin (AuSn) solder eutectic bonding for our high-power diode stacks. This packaging method provides high thermal conductivity, mechanical strength, and resistance to thermal fatigue, preventing solder migration and extending the module lifespan compared to traditional indium solder.
Q5: Do you supply individual replacement modules for third-party handpieces?
Yes, we manufacture pin-to-pin compatible replacement diode stacks and optical modules designed to fit major aesthetic handpiece brands, helping service technicians refurbish equipment at a lower cost.
Q6: How do you verify the stability of your high-power 3500W modules?
Every module undergoes automated Light-Current-Voltage (LIV) testing and beam profile analysis. We also perform continuous thermal cycling and multi-hour burn-in procedures to ensure stable peak output, pulse stability, and wavelength alignment before delivery.
Q7: What water quality is required for cooling micro-channel diode stacks?
To prevent scale deposits and channel corrosion, we recommend using deionized (DI) water with a resistivity of 1 to 3 Megaohm-cm, paired with a water filtration system capable of capturing particles down to 5 microns.
Q8: What is the lead time for customized OEM orders?
Standard catalog configurations typically ship within 2 weeks. Custom OEM projects, which involve custom chassis design or specific wavelength matching, require an initial prototyping period of 4 to 6 weeks, followed by production scheduling based on volume.
Q9: Do you provide support for regulatory submissions?
Yes, we provide our OEM partners with full documentation, including ISO 13485 quality credentials, material safety sheets, and technical file indexes to support FDA 510(k), CE MDR, and other regional medical regulatory filings.
Q10: What are the terms of your product warranty?
We provide a standard 12-month or pulse-count warranty (e.g., 10 to 20 million shots, depending on the configuration) for our laser stacks, covering manufacturing defects and material failures when operated within specified parameters.

Industrial & Medical High-Power Modules

Premium optoelectronic stacks configured for high-energy density aesthetic and medical systems.

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