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Photonic Defense Against Drones Photonic Defense Against Drones

Photonic Defense Against Drones

23.07.2026

Photonic Defense Against Drones

Protecting land and sea with emitters, transmitters, and detectors

The escalating evolution of drone warfare has fundamentally reshaped global defense investments. The adoption of drone technology in the arsenal of militaries has also caused a need to reevaluate security threats. Drones pose a high-volume threat that can cost far less than traditional assets, like missiles or tanks. Therefore, the anti-air systems engineers are designing today require a combination of thousands of highly precise components that aid in detection, target tracking and laser emission to quickly find and neutralize these threats. 

For companies involved in the development and supply of drone defense systems, this means that overall platform performance is heavily dependent on the quality of its key components. Specialized partners are required that combine deep technological expertise with strong industrial manufacturing capabilities. 

Rapid-Fire LiDAR for Aerial Detection

Due to the wide array of drones and other unmanned aerial vehicles (UAVs), new security challenges have continued to develop. Low-sky threats like shaheed drones and first-person view (FPV) drones require reliable detection, tracking, and neutralizing solutions for aerial threats. Traditional methods for aerial detection like radar often miss these small targets, but through precision photonics components like pulsed laser didoes (PLDs) and avalanche photodiodes (APDs) enable new counter-drone capabilities. 

Target acquisition with the help of Pulsed Laser Diodes 

Target acquisition starts with utilizing a PLD, by emitting high-peak-power, nanosecond-speed infrared pulses, sometimes at 850 nm, but usually at higher wavelengths like 905 nm, and 1550 nm, they send a signal through the battlefield. At higher wavelengths, the penetration through dust, smoke, and atmospheric distortion allows the PLD to reflect a pulse of targets and quickly measure distances and even full environmental conditions through rangefinding and LiDAR systems.  

Avalanche Photodiodes to detect signals even in Harsh Conditions 

Returning that laser beam into a sensitive detector like an APD allows the defense system to detect incredibly faint signals, which can help significantly in real-world situations where debris gets in the way. Ultra-sensitive silicon and InGaAs APDs can multiply a weak signal through internal gain mechanism, allowing exact time-of-flight (ToF) to collect real-time 3D situational awareness. Capturing low light levels can be especially useful when dealing with matte-black carbon fiber drones that absorb lots of incident light. By utilizing the high-speed of APDs engineers can get a tactical advantage in detecting targets thousands of times faster than typical thermal detectors, enabling rapid adjustment for changing vectors in real time.  

The combination of these emitters and detectors for rapid measurements makes it easy to quickly generate 3D point clouds that give the system a clear indication of what is in the environment. Similar to many civilian solutions where LiDAR systems keep pedestrians safe or vehicles away from obstacles, military systems can have automated countermeasures, whether that is for kinetic interceptors or laser-based weapons. By having thousands of data points being updated every second, the exact vector, altitude, and velocity of a threat can be tracked along the entire range of the approach. 

Graphical representation of a LiDAR system on a drone Graphical representation of a LiDAR system on a drone

Laser Defense Against Drones 

Photonic Defense Against Drones Photonic Defense Against Drones

The testing of high-energy laser weapons for counter-drone defense marks a technological turning point for modern armed forces. Defense centers are currently evaluating how these systems perform under realistic operational conditions. The focus is on effectiveness and precision, but also on integration, scalability, and future deployment concepts. 

Following successful trials at sea, also land-based scenarios for the defense against unmanned aerial systems are being assessed. Initial results indicate that laser weapons can engage targets with high precision, minimal delay, and comparatively low cost per shot. This opens up new possibilities in combination with conventional effectors such as missiles or gun-based systems. 

Key questions remain: How reliably do such systems perform under changing environmental conditions? What ranges and engagement times are realistically achievable? And how can the effect be scaled across different target types from small drones to faster, more complex threats? These and similar aspects are at the heart of current evaluations in militaries around the world. 

Laser Optics with High Standards 

An often underestimated yet critical factor lies in the optical components used within laser weapons. High-energy laser systems impose extreme demands on optics: coatings must ensure maximum transmission while simultaneously withstanding very high-power densities. The laser-induced damage threshold (LIDT) thus becomes a central design parameter. Even the smallest defects or contamination can lead to damage under high power and degrade overall system performance. 

In addition, scattering losses, thermal effects, and stability of beam shaping and guidance play a decisive role. Precisely manufactured and rigorously qualified optics are essential to maintain the required beam quality throughout the entire effect chain. This is particularly relevant for mobile applications in the field, where vibration, temperature fluctuations, and changing atmospheric conditions add further complexity. 

Mastering Strict Regulatory Norms Together 

Beyond pure performance metrics, defense industry customers place particularly stringent requirements on durability, reliability, and extended operational lifetimes with minimal maintenance. This includes clearly defined qualification standards, traceability in manufacturing, and robust guarantees regarding stability and repeatability. In procurement contexts, lifecycle costs and delivery capability are critical. Here, dependable supply chains and partners become just as important as the technical specifications themselves. 

This highlights the importance of a strong network between industry and research. Suppliers with a broad portfolio in photonics and laser technology are well positioned to contribute to meeting the stringent requirements of drone defense applications. Particularly when transitioning demonstrators into operational systems, qualified partners such as LASER COMPONENTS within the supply chain become a crucial factor for success. 

Our Products

For Defense and Aerospace

Graph on functional characteristics of silicon APDs Graph on functional characteristics of silicon APDs
Similar to photomultipliers, avalanche photodiodes are used to detect extremely weak light intensities. Si APDs are used in the wavelength range from 250 to 1100 nm, and InGaAs is used as semiconductor material in APDs for the wavelength range from 1100 to 1700 nm.
Pulse laser diode in the R-Package Pulse laser diode in the R-Package
Pulsed laser diodes (PLDs) are available in the wavelengths 850 nm, 905 nm and 1550 nm. All of our PLDs are developed and manufactured at LC. Customer-specific requests can be accommodated.
Various coated lenses for optical systems Various coated lenses for optical systems
High power laser optics customized to your needs - from single optics to mass production
PSD with integrated signal amplification PSD with integrated signal amplification
Position sensitive detectors determine the position of a light spot. This method is unbeatably fast. Preamplifiers are available for the easy operation of PSDs.
Pyroelectric Infrared Detector Pyroelectric Infrared Detector
IR detectors have been a part of our standard product range at LASER COMPONENTS for almost three decades. A distinction is made between sensors for the near infrared range (NIR) from 1.0 µm to 2.5 µm and those for the mid-infrared range (MIR) above 2.5 µm. IR detectors of all modes of operation are a part of our product portfolio and leave nothing to be desired.

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Employee of LASER COMPONENTS UK Milan Poupinet
Technical Sales and Business Development Engineer
Milan Poupinet
LASER COMPONENTS (UK) Ltd.
CM7 2AA Braintree
Employee of LASER COMPONENTS UK Samuel Thienel
Technical Sales Engineer
Samuel Thienel
LASER COMPONENTS (UK) Ltd.
CM7 2AA Braintree

LASER COMPONENTS UK - Your competent partner for optical and optoelectronic components in the United Kingdom.

Welcome to LASER COMPONENTS UK Ltd., your expert for photonics components. Each product in our wide range of detectors, laser diodes, laser modules, optics, fiber optics, and more is worth every Pound (£/GBP). Our customized solutions cover all conceivable areas of application: from sensor technology to medical technology. You can reach us here:

4 William House, Old St Michaels Drive
Braintree CM7 2AA
United Kingdom

Phone: +44 1245 491 499
Email: info(at)lasercomponents.co.uk

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Employee of LASER COMPONENTS UK Milan Poupinet
Technical Sales and Business Development Engineer
Milan Poupinet
LASER COMPONENTS (UK) Ltd.
CM7 2AA Braintree
Employee of LASER COMPONENTS UK Samuel Thienel
Technical Sales Engineer
Samuel Thienel
LASER COMPONENTS (UK) Ltd.
CM7 2AA Braintree
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Laser Components

4 William House, Old St Michaels Drive
Braintree CM7 2AA
United Kingdom

Phone: +44 1245 491 499

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