Delta-Sigma Modulator-Based Step-Up DC–DC Converter with Dynamic Output Voltage Scaling

The switching noise and conversion efficiency of step-up DC-DC converters need to be improved to meet increasing demand. The delta-sigma modulation (DSM) technique is typically used to improve the performance of buck converters; however, this control scheme is not directly applicable for boost conve...

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Main Authors: Young-Kyun Cho, Bong Hyuk Park, Seok-Bong Hyun
Format: Article
Language:English
Published: MDPI AG 2020-03-01
Series:Electronics
Subjects:
Online Access:https://www.mdpi.com/2079-9292/9/3/498
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spelling doaj-97373eabff5249c1b8e2bb173d60a8042020-11-25T02:01:59ZengMDPI AGElectronics2079-92922020-03-019349810.3390/electronics9030498electronics9030498Delta-Sigma Modulator-Based Step-Up DC–DC Converter with Dynamic Output Voltage ScalingYoung-Kyun Cho0Bong Hyuk Park1Seok-Bong Hyun2Communication RF Research Section, Electronics and Telecommunications Research Institute (ETRI), Daejeon 34129, KoreaCommunication RF Research Section, Electronics and Telecommunications Research Institute (ETRI), Daejeon 34129, KoreaCommunication RF Research Section, Electronics and Telecommunications Research Institute (ETRI), Daejeon 34129, KoreaThe switching noise and conversion efficiency of step-up DC-DC converters need to be improved to meet increasing demand. The delta-sigma modulation (DSM) technique is typically used to improve the performance of buck converters; however, this control scheme is not directly applicable for boost converters. This paper presents a boost DC&#8722;DC converter using a continuous-time delta-sigma modulator (DSM) controller for battery-powered and noise-sensitive applications. The proposed converter can adjust a wide range of output voltages dynamically by clamping the maximum duty cycle of the DSM, thus enabling stable and robust transient responses of the converter. The switching harmonics in the converter output are reduced effectively by the noise shaping property of the modulator. Moreover, the converter does not suffer from instability of mode switching due to the use of a fixed third-order DSM. Fabricated in a 180 nm CMOS, the converter occupies an active area of 0.76 mm<sup>2</sup>. It produced an output voltage ranging from 2.5 V to 5.0 V at an input voltage of 2.0 V and achieved a peak conversion efficiency of 95.5%. The output voltage ripples were maintained under 25 mV for all load conditions. A low noise output spectrum with a first spurious peak located &#8722;91 dBc from the signal was achieved.https://www.mdpi.com/2079-9292/9/3/498boost convertermaximum on-time duty cycledelta-sigma modulatorswitching noiseconversion efficiency
collection DOAJ
language English
format Article
sources DOAJ
author Young-Kyun Cho
Bong Hyuk Park
Seok-Bong Hyun
spellingShingle Young-Kyun Cho
Bong Hyuk Park
Seok-Bong Hyun
Delta-Sigma Modulator-Based Step-Up DC–DC Converter with Dynamic Output Voltage Scaling
Electronics
boost converter
maximum on-time duty cycle
delta-sigma modulator
switching noise
conversion efficiency
author_facet Young-Kyun Cho
Bong Hyuk Park
Seok-Bong Hyun
author_sort Young-Kyun Cho
title Delta-Sigma Modulator-Based Step-Up DC–DC Converter with Dynamic Output Voltage Scaling
title_short Delta-Sigma Modulator-Based Step-Up DC–DC Converter with Dynamic Output Voltage Scaling
title_full Delta-Sigma Modulator-Based Step-Up DC–DC Converter with Dynamic Output Voltage Scaling
title_fullStr Delta-Sigma Modulator-Based Step-Up DC–DC Converter with Dynamic Output Voltage Scaling
title_full_unstemmed Delta-Sigma Modulator-Based Step-Up DC–DC Converter with Dynamic Output Voltage Scaling
title_sort delta-sigma modulator-based step-up dc–dc converter with dynamic output voltage scaling
publisher MDPI AG
series Electronics
issn 2079-9292
publishDate 2020-03-01
description The switching noise and conversion efficiency of step-up DC-DC converters need to be improved to meet increasing demand. The delta-sigma modulation (DSM) technique is typically used to improve the performance of buck converters; however, this control scheme is not directly applicable for boost converters. This paper presents a boost DC&#8722;DC converter using a continuous-time delta-sigma modulator (DSM) controller for battery-powered and noise-sensitive applications. The proposed converter can adjust a wide range of output voltages dynamically by clamping the maximum duty cycle of the DSM, thus enabling stable and robust transient responses of the converter. The switching harmonics in the converter output are reduced effectively by the noise shaping property of the modulator. Moreover, the converter does not suffer from instability of mode switching due to the use of a fixed third-order DSM. Fabricated in a 180 nm CMOS, the converter occupies an active area of 0.76 mm<sup>2</sup>. It produced an output voltage ranging from 2.5 V to 5.0 V at an input voltage of 2.0 V and achieved a peak conversion efficiency of 95.5%. The output voltage ripples were maintained under 25 mV for all load conditions. A low noise output spectrum with a first spurious peak located &#8722;91 dBc from the signal was achieved.
topic boost converter
maximum on-time duty cycle
delta-sigma modulator
switching noise
conversion efficiency
url https://www.mdpi.com/2079-9292/9/3/498
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