2012IEEE Journal of Solid-State CircuitsRequires access

A 3.6 mW, 90 nm CMOS Gated-Vernier Time-to-Digital Converter With an Equivalent Resolution of 3.2 ps

Ping Lu, Antonio Liscidini, Pietro Andreani

Open publisher page 106 citations

Abstract

Two gated ring oscillators (GROs) act as the delay lines in an improved Vernier time-to-digital converter (TDC), where the already small quantization noise of the standard Vernier TDC is further first-order shaped by the GRO operation. The TDC has been implemented in a 90 nm CMOS process and consumes 3 mA from 1.2 V when operating at 25 MHz. The native Vernier resolution of the TDC is 5.8 ps, while the total noise integrated over a bandwidth of 800 kHz yields an equivalent TDC resolution of 3.2 ps.

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Two gated ring oscillators (GROs) act as the delay lines in an improved Vernier time-to-digital converter (TDC), where the already small quantization noise of the standard Vernier TDC is further first-order shaped by the GRO operation. The TDC has been implemented in a 90 nm CMOS process and consumes 3 mA from 1.2 V when operating at 25 MHz. The native Vernier resolution of the TDC is 5.8 ps, while the total noise integrated over a bandwidth of 800 kHz yields an equivalent TDC resolution of 3.2 ps.

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Available abstract

Two gated ring oscillators (GROs) act as the delay lines in an improved Vernier time-to-digital converter (TDC), where the already small quantization noise of the standard Vernier TDC is further first-order shaped by the GRO operation. The TDC has been implemented in a 90 nm CMOS process and consumes 3 mA from 1.2 V when operating at 25 MHz. The native Vernier resolution of the TDC is 5.8 ps, while the total noise integrated over a bandwidth of 800 kHz yields an equivalent TDC resolution of 3.2 ps.

Key concepts: Vernier scale, Time-to-digital converter, CMOS, Resolution (logic), Quantization (signal processing), Effective number of bits, Bandwidth (computing), Materials science

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