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13.10 A >1W 2.2GHz switched-capacitor digital power amplifier with wideband mixed-domain multi-tap FIR filtering of OOB noise floor

机译:13.10 A> 1W的2.2GHz开关电容器数字功率放大器,具有宽带混合域多抽头FIR滤波,可实现OOB本底噪声

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Digital power amplifiers and transmitters have drawn significant interest in the recent past due to their reconfigurability, compatibility with CMOS technology scaling and DSP, and potential for automated design synthesis [1–5]. While significant progress has been made in achieving moderate output power levels in CMOS, wideband modulation, and high efficiency under back-off, out-of-band emissions remain an unsolved problem. The elimination of the analog reconstruction filter that follows the DAC in a conventional analog transmitter implies that broadband DAC quantization noise appears at the output of the transmitter unfiltered. Quantization noise can be suppressed by increasing resolution and/or sampling rate, but to meet the challenging −150 to −160dBc/Hz out-of-band (OOB and specifically RX-band) noise requirement of FDD with conventional duplexers, nearly 12b at 0.5GS/s is required. Such a high effective number of bits (ENOB) is extremely challenging in digital PAs given their strong output nonlinearity. Consequently, while low-power modulators are able to approach −150dBc/Hz RX-band noise floor and below [6], state-of-the-art digital transmitters achieve −130 to −135dBc/Hz RX-band noise, nearly 20dB or 100× away [2–4]. Embedding mixed-domain FIR filtering into digital transmitters to create notches in the RX band has been proposed [4,7], but, while successful in low-power modulators [7], nonlinearity significantly limits notch depth to <10dB in digital PAs [4]. Further, notch bandwidth (BW) is far less than 20MHz, the typical LTE BW, in the simple two-tap FIR structures that have been explored [4].
机译:数字功率放大器和发送器由于具有可重新配置性,与CMOS技术缩放比例和DSP的兼容性以及自动设计综合的潜力,因此在最近引起了人们的极大兴趣[1-5]。尽管在实现适度的CMOS输出功率水平,宽带调制和退避条件下的高效率方面已经取得了重大进展,但是带外发射仍然是一个尚未解决的问题。消除常规模拟发射机中跟随DAC的模拟重建滤波器意味着宽带DAC量化噪声出现在未经滤波的发射机输出端。可以通过提高分辨率和/或采样率来抑制量化噪声,但要满足使用传统双工器时FDD极具挑战性的-150至-160dBc / Hz带外(OOB,特别是RX波段)噪声的要求,在12dB时接近12b。要求为0.5GS / s。由于数字PA具有强大的输出非线性特性,因此如此高的有效位数(ENOB)极具挑战性。因此,尽管低功率调制器能够接近-150dBc / Hz RX频带的本底噪声[6]以下,但最新的数字发射机实现了-130至-135dBc / Hz RX频带的噪声,接近20dB。或100倍远[2-4]。已经提出了将混合域FIR滤波嵌入数字发射机以在RX频带中创建陷波的方法[4,7],但是,尽管在低功率调制器中获得了成功[7],但是非线性技术将陷波深度显着地限制在数字PA中[10dB以下] [ 4]。此外,在已经研究过的简单的两抽头FIR结构中,陷波带宽(BW)远远小于典型的LTE BW 20MHz [4]。

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