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Spur Minimization Techniques for Ultra-Low-Power Injection-Locked Transmitters

机译:超低功耗锁定变送器的刺激最小化技术

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Frequency multiplying wireless transmitters (TX) employing harmonic injection-locked technique benefit from high energy efficiency and less hardware complexity but largely suffer from reference spurs that violate the TX spectral specifications. This work proposes a self-aligned phase-locked loop (PLL) in conjunction with harmonic injection locking technique to achieve significantly improved spur performance under ultra-low-power (ULP) operations for sub-GHz IoT TXs. The on-chip type-I PLL calibrates the phase error in the ring oscillator (RO) in real-time and avoids large spurs induced from the frequency deviation in the harmonic injection locking. A compact zero power consumption twin-T notch filter for spur suppression is implemented within the PLL loop to tackle the rail-to-rail voltage jump that comes from the output of the phase detector (PD). Designed and fabricated in the TSMC 180 nm CMOS process, the proposed frequency multiplying TX occupies an active area of only 0.0413 mm2. The lowest power consumption with >3X improved energy-efficiency is observed while consistently achieving >62 dB spur suppression with −14 dBm output at 915 MHz. The TX supports OOK modulation with an average power consumption of $200.9~mu ext{W}$ only at 3 Mb/s data rate achieving a normalized 66.97 pJ/bit energy efficiency.
机译:采用谐波注射锁定技术的频率乘以无线发射器(TX)受益于高能量效率和较少的硬件复杂性,但很大程度上存在违反TX光谱规格的参考主体。该工作提出了一种与谐波注射锁定技术结合自对准的锁相环(PLL),以实现对SUB-GHZ IOT TXS的超低功耗(ULP)操作下的显着提高的刺激性能。片上类型-I PLL实时校准环形振荡器(RO)中的相位误差,并避免从谐波喷射锁定中的频率偏差引起的大型刺激。用于旋转抑制的紧凑型零功耗双T槽滤波器在PLL环路内实现,以解决来自相位检测器的输出(PD)的轨到轨电压跳转。在TSMC 180NM CMOS工艺中设计和制造,所提出的频率乘以TX占用仅0.0413毫米的有源区 2 。观察到具有> 3X改善的能量效率的最低功耗,同时始终如一地实现> 62dB的抑制,915 MHz输出为-14 dBm输出。 TX支持具有平均功耗的OCK调制<内联公式XMLNS:MML =“http://www.w3.org/1998/math/mathml”xmlns:xlink =“http://www.w3.org/1999/xlink”> $ 200.9〜 mu text {w} $ 仅以3 MB / S数据速率为准,达到标准化的66.97 PJ /比特能效。

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