{"status":"ok","message-type":"work","message-version":"1.0.0","message":{"indexed":{"date-parts":[[2024,9,11]],"date-time":"2024-09-11T09:46:05Z","timestamp":1726047965657},"reference-count":32,"publisher":"Institute of Electronics, Information and Communications Engineers (IEICE)","issue":"13","content-domain":{"domain":[],"crossmark-restriction":false},"short-container-title":["IEICE Electron. Express"],"published-print":{"date-parts":[[2019]]},"DOI":"10.1587\/elex.16.20190218","type":"journal-article","created":{"date-parts":[[2019,5,16]],"date-time":"2019-05-16T22:03:05Z","timestamp":1558044185000},"page":"20190218-20190218","source":"Crossref","is-referenced-by-count":6,"title":["Design and theoretical analysis of a clock jitter reduction circuit using gated phase blending between self-delayed clock edges"],"prefix":"10.1587","volume":"16","author":[{"given":"Kiichi","family":"Niitsu","sequence":"first","affiliation":[{"name":"Graduate School of Engineering, Nagoya University"}],"role":[{"role":"author","vocabulary":"crossref"}]},{"given":"Osamu","family":"Kobayashi","sequence":"additional","affiliation":[{"name":"STARC"}],"role":[{"role":"author","vocabulary":"crossref"}]},{"given":"Takahiro J.","family":"Yamaguchi","sequence":"additional","affiliation":[{"name":"Graduate School of Engineering, Gunma University"}],"role":[{"role":"author","vocabulary":"crossref"}]},{"given":"Haruo","family":"Kobayashi","sequence":"additional","affiliation":[{"name":"STARC"}],"role":[{"role":"author","vocabulary":"crossref"}]}],"member":"532","reference":[{"key":"1","unstructured":"[1] Texas Instrument\u2019s Production Introduction Page: http:\/\/www.ti.com\/lsds\/ti\/clocks-timers\/clock-jitter-cleaners-products.page."},{"key":"2","doi-asserted-by":"crossref","unstructured":"[2] M. J. Underhill: US patent 6,791,393 B1 (Sep. 14, 2004).","DOI":"10.1517\/13543776.14.6.791"},{"key":"3","unstructured":"[3] K. Niitsu, <i>et al.<\/i>: \u201cA clock jitter reduction circuit using gated phase blending between self-delayed clock edges,\u201d Proc. IEEE Symp. on VLSI Circuits (2012) 142 (DOI: 10.1109\/VLSIC.2012.6243830)."},{"key":"4","unstructured":"[4] K. Niitsu, <i>et al.<\/i>: \u201cDesign of a clock jitter reduction circuit using gated phase blending between self-delayed clock edges,\u201d Proc. IEEE\/ACM Asia and South Pacific Design Automation Conf. (2013) 103 (DOI: 10.1109\/ASPDAC.2013.6509577)."},{"key":"5","doi-asserted-by":"publisher","unstructured":"[5] J. A. McNeill: \u201cJitter in ring oscillators,\u201d IEEE J. Solid-State Circuits <b>32<\/b> (1997) 870 (DOI: 10.1109\/4.585289).","DOI":"10.1109\/4.585289"},{"key":"6","doi-asserted-by":"publisher","unstructured":"[6] K. Niitsu, <i>et al.<\/i>: \u201cCMOS circuits to measure timing jitter using a self-referenced clock and a cascaded time difference amplifier with duty-cycle compensation,\u201d IEEE J. Solid-State Circuits <b>47<\/b> (2012) 2701 (DOI: 10.1109\/JSSC.2012.2211655).","DOI":"10.1109\/JSSC.2012.2211655"},{"key":"7","doi-asserted-by":"publisher","unstructured":"[7] B. W. Garlepp, <i>et al.<\/i>: \u201cA portable digital DLL for high-speed CMOS interface circuits,\u201d IEEE J. Solid-State Circuits <b>34<\/b> (1999) 632 (DOI: 10.1109\/4.760373).","DOI":"10.1109\/4.760373"},{"key":"8","doi-asserted-by":"publisher","unstructured":"[8] W. Khalil, <i>et al.<\/i>: \u201cA self-calibrated on-chip phase-noise measurement circuit with \u221275 dBc single-tone sensitivity at 100 kHz offset,\u201d IEEE J. Solid-State Circuits <b>42<\/b> (2007) 2758 (DOI: 10.1109\/JSSC.2007.908689).","DOI":"10.1109\/JSSC.2007.908689"},{"key":"9","doi-asserted-by":"publisher","unstructured":"[9] X. Yu, <i>et al.<\/i>: \u201cAn FIR-embedded noise filtering method for delta sigma fractional-N PLL clock generators,\u201d IEEE J. Solid-State Circuits <b>44<\/b> (2009) 2426 (DOI: 10.1109\/JSSC.2009.2021086).","DOI":"10.1109\/JSSC.2009.2021086"},{"key":"10","doi-asserted-by":"publisher","unstructured":"[10] J. Zhu, <i>et al.<\/i>: \u201cA 0.0021 mm<sup>2<\/sup> 1.82 mW 2.2 GHz PLL using time-based integral control in 65 nm CMOS,\u201d IEEE J. Solid-State Circuits <b>52<\/b> (2017) 8 (DOI: 10.1109\/JSSC.2016.2598768).","DOI":"10.1109\/JSSC.2016.2598768"},{"key":"11","unstructured":"[11] S. S. Nagam and P. R. Kinget: \u201cA 0.008 mm<sup>2<\/sup> 2.4 GHz type-I sub-sampling ring-oscillator-based phase-locked loop with a \u2212239.7 dB FoM and \u221264 dBc reference spurs,\u201d Proc. IEEE Custom Integrated Circuits Conference (2018) 1 (DOI: 10.1109\/CICC.2018.8357091)."},{"key":"12","doi-asserted-by":"publisher","unstructured":"[12] S. Min, <i>et al.<\/i>: \u201cA 90-nm CMOS 5-GHz ring-oscillator PLL with delay-discriminator-based active phase-noise cancellation,\u201d IEEE J. Solid-State Circuits <b>48<\/b> (2013) 1151 (DOI: 10.1109\/JSSC.2013.2252515).","DOI":"10.1109\/JSSC.2013.2252515"},{"key":"13","doi-asserted-by":"publisher","unstructured":"[13] K. Niitsu: \u201cEnergy-autonomous biosensing platform using supply-sensing CMOS integrated sensor and biofuel cell for next-generation healthcare Internet of Things,\u201d Jpn. J. Appl. Phys. <b>57<\/b> (2018) 1002A5 (DOI: 10.7567\/JJAP.57.1002A5).","DOI":"10.7567\/JJAP.57.1002A5"},{"key":"14","unstructured":"[14] K. Hayashi, <i>et al.<\/i>: \u201cA 385 \u00d7 385 \u00b5m2 0.165 V 0.27 nW fully-integrated supply-modulated OOK transmitter in 65 nm CMOS for glasses-free, self-powered, and fuel-cell-embedded continuous glucose monitoring contact lens,\u201d accepted to IEICE Trans. Electron. (2019)."},{"key":"15","doi-asserted-by":"crossref","unstructured":"[15] K. Hayashi, <i>et al.<\/i>: \u201cAn FSK inductive-coupling transceiver using 60 mV 0.64 fJ\/bit 0.0016 mm<sup>2<\/sup> load-modulated transmitter and LC-oscillator-based receiver in 65 nm CMOS for energy-budget-unbalanced application,\u201d accepted to IEICE Trans. Electron. (2019).","DOI":"10.1587\/transele.2018CTS0002"},{"key":"16","doi-asserted-by":"publisher","unstructured":"[16] S. Arata, <i>et al.<\/i>: \u201cYield and open-circuit-voltage enhancement of 0.36 mm<sup>2<\/sup> solid-state CMOS-compatible glucose fuel cell by using repeated separator coating,\u201d accepted to Jpn. J. Appl. Phys. (DOI: 10.7567\/1347-4065\/aafc9e).","DOI":"10.7567\/1347-4065\/aafc9e"},{"key":"17","doi-asserted-by":"publisher","unstructured":"[17] Y. Nishio, <i>et al.<\/i>: \u201cDesign and calibration of a small-footprint, low-frequency, and low-power gate leakage timer using differential leakage technique,\u201d IEICE Trans. Electron. (2019) (DOI: 10.1587\/transele.2018CDP0005).","DOI":"10.1587\/transele.2018CDP0005"},{"key":"18","doi-asserted-by":"publisher","unstructured":"[18] K. Niitsu, <i>et al.<\/i>: \u201cA 65-nm CMOS fully-integrated analysis platform using an on-chip vector network analyzer and a transmission-line-based detection window for analyzing circulating tumor cell and exosome,\u201d accepted to IEEE Trans. Biomed. Circuits Syst. (DOI: 10.1109\/TBCAS.2018.2882472).","DOI":"10.1109\/TBCAS.2018.2882472"},{"key":"19","doi-asserted-by":"publisher","unstructured":"[19] M. Matsunaga, <i>et al.<\/i>: \u201cDesign and analysis of a three-dimensional millimeter-wave frequency-shift based CMOS biosensor using vertically stacked spiral inductors in LC oscillators,\u201d accepted to Analog Integr. Circ. Sig. Process. <b>98<\/b> (2019) 453 (DOI: 10.1007\/s10470-018-1267-5).","DOI":"10.1007\/s10470-018-1267-5"},{"key":"20","doi-asserted-by":"publisher","unstructured":"[20] K. Hayashi, <i>et al.<\/i>: \u201cA 6.1 nA fully-integrated CMOS supply-modulated OOK transmitter in 55 nm DDC CMOS for glass-free, self-powered, and fuel-cell-embedded continuous glucose monitoring contact lens,\u201d accepted to IEEE Trans. Circuits Syst. II, Exp. Briefs <b>65<\/b> (2018) 1360 (DOI: 10.1109\/TCSII.2018.2860636).","DOI":"10.1109\/TCSII.2018.2860636"},{"key":"21","doi-asserted-by":"publisher","unstructured":"[21] K. Niitsu, <i>et al.<\/i>: \u201cA self-powered supply-sensing biosensor platform using bio fuel cell and low-voltage, low-cost CMOS supply-controlled ring oscillator with inductive-coupling transmitter for healthcare IoT,\u201d IEEE Trans. Circuits Syst. I, Reg. Papers <b>65<\/b> (2018) 2784 (DOI: 10.1109\/TCSI.2018.2791516).","DOI":"10.1109\/TCSI.2018.2791516"},{"key":"22","doi-asserted-by":"publisher","unstructured":"[22] S. Arata, <i>et al.<\/i>: \u201cWafer-scale development and experimental verification of 0.36-mm<sup>2<\/sup> 228-mV open-circuit-voltage solid-state CMOS-compatible glucose fuel cell for healthcare IoT application,\u201d Jpn. J. Appl. Phys. <b>57<\/b> (2018) 04FM04 (DOI: 10.7567\/JJAP.57.04FM04).","DOI":"10.7567\/JJAP.57.04FM04"},{"key":"23","doi-asserted-by":"publisher","unstructured":"[23] M. Matsunaga, <i>et al.<\/i>: \u201cDesign trade-off between spatial resolution and power consumption in CMOS biosensor circuit based on millimeter-wave LC-oscillator array,\u201d Jpn. J. Appl. Phys. <b>57<\/b> (2018) 03EC02 (DOI: 10.7567\/JJAP.57.03EC02).","DOI":"10.7567\/JJAP.57.03EC02"},{"key":"24","doi-asserted-by":"publisher","unstructured":"[24] T. Nakanishi, <i>et al.<\/i>: \u201cA 40-GHz fully integrated circulating tumor cell analysis vector network analyzer in 65-nm CMOS technology with coplanar-line-based detection area,\u201d Jpn. J. Appl. Phys. <b>57<\/b> (2018) 03EC01 (DOI: 10.7567\/JJAP.57.03EC01).","DOI":"10.7567\/JJAP.57.03EC01"},{"key":"25","doi-asserted-by":"publisher","unstructured":"[25] K. Itakura, <i>et al.<\/i>: \u201cTheoretical analysis and simulation study of low-power CMOS electrochemical impedance spectroscopy biosensor in 55 nm DDC technology for cell-state monitoring,\u201d Jpn. J. Appl. Phys. <b>57<\/b> (2018) 01AG02 (DOI: 10.7567\/JJAP.57.01AG02).","DOI":"10.7567\/JJAP.57.01AG02"},{"key":"26","doi-asserted-by":"publisher","unstructured":"[26] A. Kobayashi, <i>et al.<\/i>: \u201cDesign and experimental verification of 0.19 V 53 \u00b5W 65 nm CMOS integrated supply-sensing sensor with a supply-insensitive temperature sensor and inductive-coupling transmitter for a self-powered bio-sensing using a biofuel cell,\u201d IEEE Trans. Biomed. Circuits Syst. <b>11<\/b> (2017) 1313 (DOI: 10.1109\/TBCAS.2017.2735447).","DOI":"10.1109\/TBCAS.2017.2735447"},{"key":"27","doi-asserted-by":"publisher","unstructured":"[27] K. Ikeda, <i>et al.<\/i>: \u201cDesign and electrochemical measurement of a current-mode analog-to-time converter with short-pulse output capability using local intra-cell activation for high-speed time-domain biosensor array,\u201d Analog Integr. Circ. Sig. Process. <b>92<\/b> (2017) 403 (DOI: 10.1007\/s10470-017-1003-6).","DOI":"10.1007\/s10470-017-1003-6"},{"key":"28","doi-asserted-by":"publisher","unstructured":"[28] K. Gamo, <i>et al.<\/i>: \u201cA current-integration-based CMOS amperometric sensor with 1024 \u00d7 1024 bacteria-sized microelectrode array for high-sensitivity bacteria counting,\u201d IEICE Trans. Electron. <b>E100-C<\/b> (2017) 602 (DOI: 10.1587\/transele.E100.C.602).","DOI":"10.1587\/transele.E100.C.602"},{"key":"29","doi-asserted-by":"publisher","unstructured":"[29] K. Ikeda, <i>et al.<\/i>: \u201cDesign and analysis of scalability in current-mode analog-to-time converter for an energy-efficient and high-resolution CMOS biosensor array,\u201d IEICE Trans. Electron. <b>E100-C<\/b> (2017) 597 (DOI: 10.1587\/transele.E100.C.597).","DOI":"10.1587\/transele.E100.C.597"},{"key":"30","doi-asserted-by":"publisher","unstructured":"[30] Y. Yamaji, <i>et al.<\/i>: \u201cSub-1-V CMOS-based electrophoresis using electroless gold plating for small-form-factor biomolecule manipulation,\u201d IEICE Trans. Electron. <b>E100-C<\/b> (2017) 592 (DOI: 10.1587\/transele.E100.C.592).","DOI":"10.1587\/transele.E100.C.592"},{"key":"31","doi-asserted-by":"publisher","unstructured":"[31] K. Niitsu, <i>et al.<\/i>: \u201cDevelopment of microelectrode arrays using electroless plating for CMOS-based direct counting of bacterial and HeLa cells,\u201d IEEE Trans. Biomed. Circuits Syst. <b>9<\/b> (2015) 607 (DOI: 10.1109\/TBCAS.2015.2479656).","DOI":"10.1109\/TBCAS.2015.2479656"},{"key":"32","doi-asserted-by":"publisher","unstructured":"[32] H. Ishihara, <i>et al.<\/i>: \u201cAnalysis and experimental verification of DNA single base polymerization detection using CMOS FET-based redox potential sensor array,\u201d Jpn. J. Appl. Phys. <b>54<\/b> (2015) 04DL05 (DOI: 10.7567\/JJAP.54.04DL05).","DOI":"10.7567\/JJAP.54.04DL05"}],"container-title":["IEICE Electronics Express"],"original-title":[],"language":"en","link":[{"URL":"https:\/\/www.jstage.jst.go.jp\/article\/elex\/16\/13\/16_16.20190218\/_pdf","content-type":"unspecified","content-version":"vor","intended-application":"similarity-checking"}],"deposited":{"date-parts":[[2022,9,18]],"date-time":"2022-09-18T04:37:51Z","timestamp":1663475871000},"score":1,"resource":{"primary":{"URL":"https:\/\/www.jstage.jst.go.jp\/article\/elex\/16\/13\/16_16.20190218\/_article"}},"subtitle":[],"short-title":[],"issued":{"date-parts":[[2019]]},"references-count":32,"journal-issue":{"issue":"13","published-print":{"date-parts":[[2019]]}},"URL":"https:\/\/doi.org\/10.1587\/elex.16.20190218","relation":{},"ISSN":["1349-2543"],"issn-type":[{"value":"1349-2543","type":"electronic"}],"subject":[],"published":{"date-parts":[[2019]]}}}