4.6 Article

Modular 128-Channel Δ-ΔΣ Analog Front-End Architecture Using Spectrum Equalization Scheme for 1024-Channel 3-D Neural Recording Microsystems

Journal

IEEE JOURNAL OF SOLID-STATE CIRCUITS
Volume 53, Issue 2, Pages 501-514

Publisher

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/JSSC.2017.2764053

Keywords

Delta-modulated Delta Sigma analog front-end (Delta-Delta Sigma AFE); Delta-modulation; continuous-time (CT) Delta Sigma; energy-area product; low power; massive-parallel; neural recording microsystem; spectrum equalization

Funding

  1. NSF ECCS [1102067]
  2. NSF [1545858]
  3. Div Of Electrical, Commun & Cyber Sys
  4. Directorate For Engineering [1102067] Funding Source: National Science Foundation

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We report an area-and energy-efficient integrated circuit architecture of a 128-channel Delta-modulated Delta Sigma analog front-end (Delta-Delta Sigma AFE) for 1024-channel 3-D massive-parallel neural recording microsystems. Our platform has adopted a modularity of 128 channels and consists of eight multi-shank neural probes connected to individual AFEs through interposers in a small form factor. In order to reduce both area and energy consumption in the recording circuits, we implemented a spectrum equalization scheme to take advantage of the inherent spectral characteristics of neural signals, where most of the energy is confined in low frequencies and follows a similar to 1/f curve in the spectrum. This allows us to implement the AFE with a relaxed dynamic range by similar to 30 dB, thereby contributing to the significant reduction of both energy and area without sacrificing signal integrity. The Delta-Delta Sigma AFE was fabricated using 0.18-mu m CMOS processes. The single-channel AFE consumes 3.05 mu W from 0.5 and 1.0 V supplies in an area of 0.05 mm(2) with 63.8-dB signal-to-noise-and-distortion ratio, 3.02 noise efficiency factor (NEF), and 4.56 (NEFVDD)-V-2. We also have achieved an energy-area product, a figure-of-merit most critical for massive-parallel neural recording systems, of 6.34 fJ/C s m(2).

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