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SCINTILLATOR → LIGHT GUIDE → PHOTOMULTIPLIER

Turn electrons
into a measured signal.

A researched connection plan for an Everhart–Thornley detector, with a concrete PMT module and clearly identified parts still to select.

TWO ELECTRICAL SYSTEMS. ONE OPTICAL LINK.

What connects to what

Select a connection to trace it
INSIDE THE VACUUMAIR SIDE · PMT MUST STAY OUTSIDE VACUUMSealed optical boundary light guide Specimennear 0 V Collector+250 Vexample SCINTILLATORcoated YAP:Ce+10 kV example H10722-110PMT + internal HV + amplifier1 V/µA · DC–20 kHzNo external PMT HV connection RG-174/U coaxsignal + return Scope / DAQ1 MΩ initiallyDC coupled Collector supplySeparate positive outputreturn to chamber ref. Scintillator HV supplyPositive HV · rated cableinhibit / monitor / discharge Chamber reference + separate PE bondBoth paths cross rated electrical feedthroughs control 0 V return+5−50Vcont Bipolar LV supply+5 V / 0 V / −5 Vred / black / green Stable gain-control source+0.5 to +1.1 V → WHITEReturn → BLACK · BLUE left insulated HV returns do not flow through the signal coax. Crossings without dots are not junctions.

Electrical connections are a proposed architecture. The scintillator/cage setpoints remain examples until an assembly and supplies are specified. The colored light-guide line carries photons, not current.

High-voltage terminal-to-terminal connection schedule
FromToWhat must be verified

Supply pin numbers, feedthrough flange, coating contact and insulation dimensions remain open because those parts are not selected. Commission this HV assembly with a qualified vacuum/HV engineer; the page is not an energization approval.

SPECIFIC TO HAMAMATSU H10722 SERIES

Six leads, no external PMT HV

The green wire is −5 V. The blue wire is an output.

Follow the revision supplied with your module. For voltage programming, insulate BLUE and use a bounded, ground-referenced source on WHITE. The manufacturer also shows a 10 kΩ potentiometer method; its 1.2 V reference can exceed the 1.1 V control limit at full travel, so monitor the wiper. Do not connect the scintillator’s +10 kV to any PMT module lead.

A COMPATIBILITY CHECK, NOT A GAIN CALIBRATION

Will this signal fit?

HYPOTHETICAL INPUTS

Vcont is checked against the datasheet limit. It does not retune the assumed anode current: a tube-specific gain calibration is still needed. These controls never change your microscope or BOM.

Ideal amplifier demandAt 1 V/µA; actual overload behavior not modeled
Nominal output ceiling+4 VManufacturer test load: 10 kΩ
First-order 1% step settling20 kHz estimate, not a measured module specification
Electron landing energyNear-zero initial energy from a grounded specimen

0 V4 V nominal limit
Vout ≈ |IA| × ZT

Transimpedance is output voltage divided by input current. The standard module has ZT = 1 V/µA. Above its specified swing, the ideal product is only the demanded voltage; it is not a real output prediction. Dark offset and overload recovery are omitted.

τ = 1/(2πf₋₃dB); t₁% = −τ ln(0.01) 20 kHz → 36.65 µs

For a single-pole approximation H(s) = 1/(1+sτ), the step error is exp(−t/τ). Solving for 1% error gives 4.605τ. Actual module/scan settling must be measured. This microsecond signal response differs from the module’s up-to-10-second gain-control settling specification.

ΔK = −qΔV = eΔV

For an electron q = −e, kinetic energy increases when it moves toward higher potential. Starting near grounded specimen potential, a +10 kV scintillator gives approximately 10 keV landing energy. The intermediate collector potential does not add another 250 eV to this endpoint difference. This energy calculation does not determine scintillator light yield.

Hover or focus a formula to read its derivation. Pixel dwell is not an antialiasing specification: sample the analog waveform sufficiently fast and filter before decimating into pixels.

ORDER OF WORK

From the bench to the chamber

Observe → measure → advance

RESEARCHED CANDIDATES & UNSPECIFIED HARDWARE

What you need to source

Detailed connection plan ↗
FunctionPart / specificationStatus and selection work
Before this can become a construction-ready wiring drawing

Specify the scintillator assembly and coating contact, light-guide/vacuum seal drawing, chamber flange, scintillator and collector supplies, cables/feedthroughs and ADC board. The PMT lead map above is verified for H10722; unidentified hardware cannot inherit its wiring.

The existing ESP32 sketch expects a conditioned signal at its internal ADC. It does not yet drive an ADS8681. Using that ADC requires its SPI readout and timing integration; use the scope to characterize the detector first.