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Updated: Feb 20, 2026

Recording Large-scale Neuronal Ensembles with Silicon Probes in the Anesthetized Rat
Published on: October 19, 2011
Time Multiplexed Active Neural Probe with 1356 Parallel Recording Sites.
Bogdan C Raducanu1,2, Refet F Yazicioglu3, Carolina M Lopez4
1Imec, 3001 Leuven, Belgium. raducanu@imec.be.
This study introduces a novel complementary metal-oxide-semiconductor (CMOS) neural probe with a record 1344 recording pixels. This high-density probe enables simultaneous neural recordings with exceptional signal quality for neuroscience research.
Area of Science:
- Neuroscience
- Electrical Engineering
- Materials Science
Background:
- Advancements in neural probes are crucial for understanding complex brain functions.
- Existing neural probes often face limitations in electrode density and channel count.
- High-density probes are needed for high-resolution neural activity mapping.
Purpose of the Study:
- To develop and characterize a novel high electrode density and high channel count CMOS active neural probe.
- To demonstrate the probe's capability for simultaneous neural recordings with sufficient signal-to-noise ratio.
- To compare the probe's performance against the current state-of-the-art.
Main Methods:
- Fabrication of a 50 µm thick, 100 µm wide, 8 mm long shank CMOS active neural probe.
- Integration of 1344 neuron-sized recording pixels (20 µm × 20 µm) and 12 reference pixels.
- In-situ signal source amplification circuits located directly under each electrode.
- Simultaneous recording from all 1356 electrodes and noise reduction techniques.
Main Results:
- The probe features 1344 recording pixels and 12 reference pixels, surpassing existing active neural probes in electrode count.
- Simultaneous recording from all electrodes is supported with sufficient signal-to-noise ratio for neuroscience applications.
- Measured input-referred noise is 12.4 µVrms (using 678 electrodes) with low power dissipation (3 µW/pixel).
Conclusions:
- The developed CMOS active neural probe offers unprecedented electrode density and channel count.
- The probe provides high-quality neural recordings with low noise and power consumption.
- This technology represents a significant advancement for high-resolution neural activity monitoring in neuroscience.
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