Multiphoton Microscopes

xCore Electronics

Next‑generation electronics for Bruker Ultima multiphoton microscopes

Advancing Multiphoton Workflows with a Unified Electronics Platform 

xCore Electronics is Bruker’s next‑generation internal electronics architecture for Ultima 2Pplus and Investigator Plus multiphoton microscopes, with upgrades to how scanning, signal acquisition, timing, and device synchronization are performed across the entire imaging system. By unifying real‑time data acquisition, signal generation, and system control within a single FPGA‑based platform, xCore delivers approximately 2x improvement in signal‑to‑noise ratio with ~50% noise reduction.

xCore’s integrated rtCore and ioCore architecture provides precise, deterministic synchronization of scanners, lasers, detectors, spatial light modulators, and external devices. This unified timing framework improves system reliability, simplifies complex experimental setups, and enables advanced multiphoton workflows. xCore was also engineered as a scalable platform, making it well suited for current and emerging applications, including FLIM, OptoVolt voltage imaging, and high‑speed multimodal experiments.

Bruker's xCore Electronics for Ultima 2Pplus and Ultima Investigator
Features

Enhanced Performance for Greater Experimental Confidence 

xCore delivers measurable performance enhancements compared with prior Signal Core and third-party electronics for cleaner images and more reliable quantification. These improvements include:

  • ~50% reduction in noise, improving baseline stability
  • ~2× SNR improvement under identical imaging conditions
  • Higher sampling rates, enabling more accurate representation of fast detector signals
  • Improved timing precision, reducing jitter and synchronization errors
  • Enhanced detector signal fidelity, supporting both intensity‑based and time‑resolved measurements
Current-generation electronics (Signal Core) (left) vs. xCore (right). The signal is similar, but the noise is reduced by ~1/2, and SNR has a ~2x improvement.
Current-generation electronics (Signal Core) (left) vs. xCore (right). The signal is similar, but the noise is reduced by ~1/2, and SNR has a ~2x improvement.

Unified Timing and Control for High‑Confidence Data

rtCore enables real‑time data acquisition

The rtCore subsystem is responsible for real‑time sampling and processing of detector signals. Implemented using advanced FPGA technology, rtCore enables deterministic timing, low-latency data handling, and precise synchronization with laser and scanner timing.

Key capabilities include:

  • High‑speed digitization (up to 125 MHz) synchronized to the excitation laser
  • Real‑time data routing with minimal latency
  • Improved photon detection fidelity for quantitative imaging

 

RT Core hardware module for real‑time signal processing
ioCore system and control system hardware

ioCore provides signal generation and system control

The ioCore subsystem provides centralized generation, routing, and synchronization of system control signals. ioCore coordinates galvo and resonant scanners, laser modulation, SLMs, detectors, and external devices through a unified timing framework.

Key capabilities include:

  • Digital and analog signal generation and routing (GPIO)
  • Precise timing alignment across multiple devices
  • Deterministic synchronization for complex multiphoton workflows

 

FPGA‑based architecture gives real-time control

xCore is built around a modern FPGA‑based design that uniquely provides a tightly integrated system. This approach enables deterministic control, higher throughput and timing precision, and field‑upgradable capability to support future technologies.

Applications

Enabling Demanding and Emerging Multiphoton Applications

xCore provides unified timing and multi‑device synchronization for the whole multiphoton imaging system, forming a scalable foundation for modular upgrades and application-focused add-ons. From time‑resolved measurements to high‑speed functional imaging, these modules leverage xCore's real-time acquisition and system control architecture to support unique workflows — even within complex experimental setups.

Use-Cases

Examples from Current Research

Functional Imaging with Fluorescence Lifetime Measurements

Fluorescence lifetime imaging (FLIM) complements intensity‑based multiphoton imaging by measuring the time‑resolved fluorescence decay of molecules following pulsed laser excitation. By analyzing photon arrival times rather than signal brightness alone, FLIM provides functional contrast for applications such as metabolic state assessment, protein interactions (FRET‑FLIM), and microenvironment sensing, even when fluorophores share the same emission channel.

xCore (with optional GigaQuant module) provides the precise laser synchronization and timing control required for accurate, pixel‑resolved lifetime measurements in advanced multiphoton workflows. These capabilities help researchers:

  • Resolve fluorescence lifetime differences independent of signal intensity
  • Quantitatively assess functional and molecular interactions at the microscale
  • Perform reliable lifetime measurements within complex, synchronized multiphoton experiments
Fluorescence lifetime measurement of a cleared mouse brain slice using xCore + GigaQuant GHz timing electronics.
xCore Electronics FAQs

Frequently Asked Questions 

Is xCore a module or an add-on?

No. xCore is a foundational electronics upgrade that replaces legacy third‑party and prior in‑house electronics. It serves as the core control and acquisition architecture for the microscope rather than a stand‑alone module.

Which systems are compatible with xCore?

xCore is designed for Ultima 2Pplus and Investigator Plus multiphoton microscope platforms and is currently compatible with approximately 200 installed Ultima systems.

Can existing Ultima systems be upgraded to xCore?

Yes. Eligible existing Ultima systems can be upgraded to xCore, providing immediate improvements in signal quality, timing precision, and system integration without replacing the microscope. Contact us to discuss upgrade options for your system.

Will xCore be compatible with future Ultima modules?

xCore is designed as the electronics foundation for future Bruker innovations, supporting current and emerging technologies such as FLIM, OptoVolt voltage imaging, and high‑speed multiphoton workflows. Upgrading to xCore helps ensure long‑term system scalability and compatibility with future developments.

Is the xCore expandable beyond the current functionality?

Yes, the xCore electronics provides expansion slots for future Bruker developments.  The expansion slots will support modules that interact with the signal processing and image generation of your Ultima system.

Does upgrading to xCore require changes to existing workflows?

No. xCore is natively integrated with Bruker software and hardware, allowing users to retain their existing imaging workflows while benefiting from enhanced performance and synchronization.

How do I upgrade to xCore electronics?

Eligible existing Ultima systems can be upgraded to xCore Electronics as a foundational electronics upgrade that replaces legacy third‑party or prior in‑house electronics. The upgrade provides immediate improvements in signal quality, timing precision, and system integration while allowing users to retain their existing microscope and established imaging workflows.

To confirm system eligibility, understand upgrade scope, and discuss timing or configuration details, users should contact a Bruker representative, who can guide them through the upgrade process and available options.

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