SILICON · Self-Injection-Locked Integrated Analog-to-Digital Converter
Horizon 2020 — Marie Skłodowska-Curie Actions
- Duration
- 2017-04-01 → 2019-03-31
- EU contribution
- €175,866
- Participants
- 1
- Scheme
- MSCA-IF-EF-ST
Lines connect the coordinator with its partners.
Results in brief
Self-Injection-Locked Integrated Analog-to-Digital Converter
The exploited project fits within the broad field of the Internet of Things (IoT) and, more specifically, within the sensing elements of wireless sensor networks (WSNs), referred to as IoT nodes. IoT nodes must comply to ever increasing level of power efficiency so as to maximize the battery lifetime. Such primary requirement can be achieved through innovative circuit architectures, able to operate at an ultra-low voltage (ULV) supply, which also entails the great benefit of allowing to supply the circuit directly from the output voltage of energy harvesters (e.g. solar cells) without the need of a boost DC-DC voltage converter, which further deteriorates the IoT node overall power efficiency. Therefore, the design of the integrated circuits (ICs) within IoT wireless sensor nodes can only target a superior power efficiency by means of ultra-low-power (ULP) and ULV design techniques and by adopting nanoscale CMOS technology to enable inexpensive large scale integration. It is indeed mandatory to emphasize that CMOS is the primary enabling technology of the ongoing IoT revolution, given the huge number of IoT devices. As a consequence, the analog section of an IoT SoC must adopt the mainstream CMOS technology (good for digital logic) while meeting stringent project specifications (e.g. noise, gain). Under such constraints, it is therefore evident how conventional analog-intensive circuit architectures for implementing the sensing front-end and the RF TRXs are unsuitable in the context of an IoT node. The exploited project focused on the sensing front-end readout chain of an IoT node and, in particular, on the analog-to-digital converter (ADC). ADCs are fundamental circuits in any receiver chain (both sensors and RF front-ends), which represent the interface between the analog domain and the digital world and, as any other block of such chain, their power efficiency must be maximized. Having outline the voltage-controlled-oscillator- (VCO-) ADC architecture as the most suitable candidate for digitally-intensive ULP and ULV CMOS SoCs, the main focus of the exploited action was to explore solutions to inherently solve the main impairment of this topology of ADCs, i.e. the intrinsic nonlinearity of the VCO transfer curve. Therefore, the main targeted objectives of this action were: performing a thorough theoretical investigation and feasibility study on the circuit architecture proposed in Annex 1 of this MSCA IF grant proposal; validating experimentally the outcome of the first feasibility study by measuring the first IC prototype, thus providing guidelines for a second design iteration; designing the second IC prototype and experimental validating it. The researcher refers to the said objectives as the initial and principal project goals, but he deems worth mentioning that additional activities have been carried out, all of which targeting the design of ULP ADCs for IoT applications. Indeed, the researcher has been involved in the design of a digitally-intensive ULP level-crossing sampling ADC for biomedical and IoT applications, a charge-pump-based time-mode ULP and ULV ADC, a mismatch-calibrated SAR ADC and a linearity calibrated SAR time-to-digital converter (TDC). The exploited action equipped the researcher with extremely valuable skills in the field of low-power time-mode analog-to-digital conversion, both of theoretical, methodological and technical nature, designing in nanoscale CMOS technologies. The main research activity has outlined that the principle of self-injection locking, exploited so as to mitigate the nonlinear tuning curve of the VCO-based ADC, proves to be insufficiently effective, although beneficial, in completely addressing the inherent nonlinearity impairments of VCO-based ADC. However, this first phase of the action paved the way towards the second VCO-based ADC design, whose development demonstrated the suitability of an alternative linearization technique, which instead proved to be perfectly effective and allows to operate the VCO-based ADC at open-loop. In addition, such technique, which leverage on a mixed voltage-current mode tuning scheme based on a programmable resistive-network, further allows the ADC to be operated at the ultra-low supply voltage of 0.2V, thus considerably decreasing its power consumption and significantly improving the overall ADC power efficiency.
Data: CORDIS, © European Union
Project objective
The Internet-of-Things (IoT) will soon represent the main target application of ICs, involving thousands of autonomous devices forming a large communication network for the purpose of exchanging/processing information about the physical world. From a hardware standpoint, the RF wireless transceivers of IoT devices demand the highest possible energy efficiency and a small area to enable inexpensive large-scale integration. Since analog/RF building blocks must be integrated with the mainstream digital technology, new circuit topologies and techniques must be adopted. The time-mode signaling, recently exploited in all-digital PLLs, data converters (the so called time-mode or VCO-based ADCs), opamps and filters, allows the performance of “analog” circuits to improve with the technology scaling. The proposed research focuses on a novel architecture of time-mode ADC, attempting to mitigate the fundamental limitations of such class of converters (i.e. the highly nonlinear VCO) by exploiting advanced RF techniques, thus giving rise to a hybrid time/frequency-mode operation. Studies have shown that by injection-locking an oscillator to its own delayed resonating waveform (self-injection-locking, SIL), the oscillating frequency can be made reasonably linear versus only two well-controlled parameters (i.e. the amplitude and phase of the self-injected signal). The SIL technique will be exploited to achieve a known, predictable relationship between the oscillating frequency and a certain analog quantity (i.e. the input signal). Accordingly, the proposed research attempts to mathematically overcome, and not to compensate accordingly, the nonlinear characteristic of an oscillator. By adding a simple digital frequency detector, SILICON has potential to devise a new class of data converters, the SIL-ADCs. It will also provide the applicant with cutting edge training from academic & industry leaders in the field which will be implemented using a personalised career development plan.
Original text from CORDIS.
Participants
- UNIVERSITY COLLEGE DUBLIN, NATIONAL UNIVERSITY OF IRELAND, DUBLIN · DublinCoordinatorIreland
Links
Data: CORDIS, © European Union
