REVIEW 2 major objections 5 minor 20 references
Development of next-generation event-driven x-ray hybrid CMOS detectors
T0 review · 2 major / 5 minor · reviewed 2026-08-08 · deepseek-v4-flash
Pith's one-line read The paper reports a next-generation X-ray hybrid CMOS detector with a comparator in every pixel, designed to read triggered pixels at effective rates up to 10 kHz while retaining the low read noise and energy resolution of the Small-Pixel…
desk verdict A clear status report on an untested next-gen detector; the design rationale is sound, but the headline performance claims are expectations and the comparator kickback risk is not addressed. read the letter →
The pith
A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.
The reading
What carries the argument
The load-bearing element is the per-pixel comparator added to a simplified version of the Small-Pixel HCD front-end, which combines a capacitive transimpedance amplifier with in-pixel correlated double sampling. When a pixel's signal exceeds a global threshold, that pixel, or a 3x3 neighborhood, is read out by column-parallel ADCs, skipping dark pixels; this is what converts a 150 Hz full-frame imager into a detector with effective rates up to 10 kHz. The same comparator is also the main risk, since powering comparators in Speedster-EXD induced kickback on the readout chain.
What would settle it
Deliver one engineering unit, cool it to 150 K, illuminate it with an 55Fe source, and compare single-pixel Mn Kα spectra and per-pixel read noise in full-frame and 3x3 event-driven modes against the Small-Pixel baseline (5.4 e-; 2.7% FWHM) and Speedster event-driven value (4.2%). If event-driven read noise or energy resolution is statistically worse than full-frame on the same chip, or above those baselines, the central claim is falsified.
Extended reading notes
Core claim
The central claim is that a simplified Small-Pixel pixel plus an in-pixel comparator will, together, give a single detector both low read noise and event-driven readout: roughly 5.5 e- read noise (under 4 e- in two high-gain test strips) and energy resolutions near 2.7% at Mn Kα, while reading triggered pixels at effective rates up to 10 kHz without the comparator-induced kickback that degraded Speedster-EXD event-driven energy resolution from 3.5% to 4.2% full-width at half-maximum. The paper also claims fixes for a set of bugs: Speedster-EXD's partial bad-pixel deselection and ROI blank-row readout, Small-Pixel's overly strong charge injection, and an increase in maximum substrate voltage from 100 V to 200 V to reduce charge spreading.
Load-bearing premise
The entire expected performance rests on the assumption that a simplified Small-Pixel pixel circuit with an added comparator, made on wafers from the same supplier, will reproduce the Small-Pixel read noise and energy resolution while adding event-driven readout without reintroducing the comparator kickback that degraded Speedster-EXD resolution; this has not yet been measured because the engineering units have not been delivered.
Editorial extensions
If this is right
- If the expected performance holds, event-driven X-ray imaging can combine the best measured HCD energy resolution with high effective throughput, reducing pile-up in bright sources.
- In-pixel comparators cut telemetry volume by reading only candidate events, which matters for bandwidth-limited space instruments.
- The two high-gain strips, if they reach below 4 e- read noise, give a path to even lower read noise at the cost of full well; future arrays could be built entirely from that circuit.
- The addressed bugs in bad-pixel deselection, ROI blank-row readout, and charge-injection states should improve event-driven readout efficiency and the fraction of clean single-pixel events.
Reading between the lines
- Beyond the paper: if the comparator no longer degrades event-driven resolution, then event-driven readout in HCDs becomes a viable low-noise mode rather than a speed-for-fidelity trade, which would strengthen the case for HCDs on future high-throughput X-ray missions.
- Beyond the paper: a direct measurement of random telegraph noise in the new devices would test whether the Small-Pixel heritage plus new comparator circuitry actually lowers RTN; the comparator itself is a new potential source of bistable states.
- Beyond the paper: the 200 V bias combined with larger 21-micron pixels should increase the single-pixel event fraction; if confirmed, it would reduce the need for event grading and simplify on-board processing.
- Beyond the paper: the engineering-run high-gain strips provide a natural controlled experiment for whether lowering electron-conversion gain is a general route below 4 e- read noise without a full redesign.
Signed reviews
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. This paper reviews the lineage of X-ray hybrid CMOS detectors developed by Penn State with Teledyne Imaging Sensors, covering the H1RG, H2RG, Speedster-EXD, and Small-Pixel HCDs, and presents a next-generation device: a 1,024 x 1,024 array of 21-micron pixels with a per-pixel comparator for event-driven readout, full-frame readout at up to 150 Hz, and effective event-driven rates up to 10 kHz. The new device is described as a simplified version of the Small-Pixel HCD front end plus an in-pixel comparator, with the same wafer manufacturer as the Small-Pixel HCD. The central claim is that it will combine Small-Pixel-class read noise (about 5.5 e-, possibly below 4 e- in high-gain strips) and energy resolution (2.7%, 160 eV at Mn K alpha) with Speedster-EXD-style event-driven capability. The authors state explicitly that completed devices have not yet been delivered for testing, so the expected performance is an inheritance-based extrapolation from prior devices.
Significance. If the expected performance is realized, the device would be a meaningful advance: low-noise event-driven X-ray imaging at high effective rate, relevant to future Lynx-class observatories and small-satellite missions; the in-flight operation of Speedster-EXD on BlackCAT strengthens the maturity of the device family. The paper's strengths are its honest framing, with expected-not-measured performance clearly flagged in Sections 2 and 4, and the fact that the historical performance numbers come from the authors' peer-reviewed prior publications. The enumerated fixes for known bugs (column deselection, ROI-row readout, charge-injection nonlinearity, 200 V substrate bias) are concrete and useful to the community. However, the headline 'best of both worlds' claim rests on two unmeasured transfer assumptions that the manuscript does not analyze quantitatively: the effect of adding a comparator on event-driven energy resolution, and the effect of the simplified front-end and larger pixel pitch on read noise.
major comments (2)
- [Sect. 3 (vs. Sect. 2.3)] The central claim that the new device will provide Small-Pixel-class energy resolution in event-driven mode is not supported by the material presented, because the paper's own data show that the predecessor event-driven design suffers comparator kickback and Sect. 3 does not describe any mitigation. Section 2.3 reports that powering the Speedster-EXD comparators degrades Mn K alpha FWHM from 3.5% (210 eV) in full-frame mode to 4.2% (250 eV) in 3x3 event-driven mode. Section 3 introduces the new comparator only as 'the addition of an in-pixel comparator,' with no discussion of coupling to the readout node, no simulation, and no test-structure measurements. If the same roughly 40 eV degradation applied to the Small-Pixel 2.7% (160 eV) full-frame resolution, the event-driven FWHM would be about 200 eV (about 3.4%), which is not the Small-Pixel energy resolution claimed. The authors should provide an analysis (circuit simulation or a design argument for reduced coupling), test-structure data, or an explicit event-driven energy-resolution expectation that includes the kickback penalty.
- [Sect. 3 and Sect. 4] The expected read-noise and energy-resolution values are quoted as point numbers (about 5.5 e-, and below 4 e- in the high-gain strips) with no noise budget and no sensitivity analysis for the two deliberate departures from the measured Small-Pixel HCD: the 'simplified' pixel circuit and the increase in pitch from 12.5 to 21 micrometers. Read noise is set directly by the input-node capacitance and CTIA design, both of which change in this design, so the 5.4 e- measured on the Small-Pixel prototype cannot simply be carried over without an estimate of the conversion gain and noise contribution at the larger pitch. Likewise, the claim that the roughly 33% and roughly 90% gain strips will reach below 4 e- rests on the assertion that the added amplifier stages contribute 'minimal additional electronics noise,' which is asserted rather than quantified. A short noise budget (input capacitance estimate, conversion gain, comparator power-supply coupling) would make the expectations quantitatively credible.
minor comments (5)
- [Sect. 1 and Sect. 2.1] '1,024 x 1,204' in Sect. 1 and '1,024 x 10,24' in Sect. 2.1 are typos for 1,024 x 1,024.
- [Sect. 2.2] 'capacitive transimpedence amplifier' should be 'capacitive transimpedance amplifier'.
- [Sect. 3] 'tripped a compartor' should be 'tripped a comparator'.
- [Sect. 3] The strings 'by~33%', 'by~90%', and '<4 e-' appear to be LaTeX-rendering artifacts; they should be rendered as 'by ~33%', 'by ~90%', and '<4 e-'.
- [Sect. 3] The basis for the expected 'lower RTN (compared to the Speedster-EXD)' is not documented, since Sect. 2.5 reports no RTN measurements for the Small-Pixel HCDs; a sentence or citation quantifying RTN in the Small-Pixel HCDs would let the reader evaluate this expectation.
Circularity Check
No circularity: expected performance is an engineering extrapolation from independently measured prior devices, not a derivation that reduces to its own inputs.
full rationale
The paper's central claim is that a next-generation HCD will combine the read noise and energy resolution of the Small-Pixel HCD with the event-driven readout of the Speedster-EXD, based on the statement that 'Each pixel is based on a simplified version of the Small-Pixel HCD design with the addition of an in-pixel comparator to enable event-driven readout.' This is an expectation from design heritage, not a derived result: the paper does not fit any parameter to a subset of data and then predict a closely related quantity, nor does it define Small-Pixel performance in terms of the new device's expected performance. The prior Small-Pixel and Speedster-EXD measurements are cited from the authors' own published work, but those are separate, externally falsifiable laboratory characterizations (e.g., 5.4 e- read noise and 2.7% Mn Kalpha FWHM for Small-Pixel; 3.5% full-frame and 4.2% event-driven FWHM for Speedster-EXD), so the self-citations carry independent evidence rather than load-bearing circular support. The paper explicitly acknowledges that completed devices have not yet been received for testing, which means the anticipated performance is an unverified transfer assumption; however, an unmeasured assumption is a correctness or risk concern, not circular reasoning. The comparator kickback issue identified in Section 2.3 is a genuine risk to the claim, but the paper does not redefine or derive away that risk, and no equation or fitting step makes the prediction equivalent to its inputs. Accordingly, no circular step is present, and the score is 0.
Assumptions & free parameters
assumptions (3)
- domain assumption Performance inheritance from Small-Pixel design
- domain assumption Higher substrate voltage reduces charge spreading
- domain assumption High-gain strips add minimal noise
Cite this review
Pith. "Pith review of Development of next-generation event-driven x-ray hybrid CMOS detectors." pith.science (2026). https://pith.science/paper/Q463YVIH
@misc{pith2026260805404,
author = {Pith},
title = {Pith review of: Development of next-generation event-driven x-ray hybrid CMOS detectors},
year = {2026},
howpublished = {\url{https://pith.science/paper/Q463YVIH}},
note = {Machine review of arXiv:2608.05404}
}
read the original abstract
The Penn State University High Energy Astrophysics Detector and Instrumentation Lab, in collaboration with Teledyne Imaging Sensors, has developed a next-generation event-driven X-ray hybrid CMOS detector. This detector is an HCD with a 1,024x1,024 array of 21-micron pitch pixels, featuring a comparator in each pixel to enable event-driven readout. While the full frame operation of this detector can reach readout speeds of up to 150 Hz, this event-driven operation allows readout of only those pixels that surpass a user-set charge threshold, enabling effective rates of up to 10 kHz. Here we report on the past detector development efforts at Penn State and describe these new detectors and expected performance improvements.
Figures
Figures from the paper (5 more)
Reference graph
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Reviewed August 8, 2026 · model on record in the stance chip above.
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