Point Contact Transistor Place Collector Near Emitter

# Place the Collector Point Near the Emitter Point: The Number Every Earlier Step Only Talked About

Step 1 argued that diffusion length has to exceed point spacing. Step 3 ground the contact face to a roughness standard set by that same spacing. Step 12 warned that a small attachment error gets magnified into a tip-position error at that spacing. Step 13 seated one point — the emitter — against the germanium and proved, for the first time, that a point contact and the conditioned surface could actually work together under load. None of those steps, including Step 13, ever had to produce an actual spacing value, because none of them involved two points at once. Step 14 is the step where that number stops being a design assumption and becomes a physical fact: the collector point goes down near the emitter, at a distance this entire sequence has been protecting since its very first operation.

Every Earlier Reference to Spacing Was a Placeholder for This Step this is the first operation that actually creates the distance the rest of the sequence assumed conditioned contact face, from Step 10 emitter, seated in Step 13 collector, placed this step this distance — a number, for the first time diffusion length from Step 1 and roughness from Step 3 were both specified against this spacing before this step, that spacing existed only as a target value in someone else's specification the actual distance placed here either falls inside every earlier assumption or quietly invalidates several of them at once

Placing the second point is not a repeat of Step 13 with a different name; it introduces a hazard Step 13's single-point seating never faced. Seating the emitter alone meant bringing one spring-loaded assembly into contact with an inert germanium surface, which could not push back electrically and was damaged only by excess mechanical force. Seating the collector means bringing a second spring-loaded assembly into close proximity with a surface that already has a live, seated point contact on it — close enough that the mechanical shock of seating the collector can disturb the emitter's own seating, and close enough that any premature or stray contact between the two points, before final position is confirmed, risks a short or an uncontrolled interaction neither point's individual specification ever had to account for. The risk this step manages is not a bigger version of Step 13's risk; it is a genuinely new one, created by the mere presence of a second point sharing the same small region of the same surface.

Approaching the Second Point Can Disturb the First a risk Step 13's single-point seating never had to face, because nothing was already seated nearby Before collector placement emitter stable, seated under its own tension no second point nearby to disturb it During collector placement mechanical shock from seating the collector can disturb the seated emitter a stray premature contact risks shorting Step 14 has to protect both points' individual seating while introducing the only operation that puts them in each other's way

The collector's position is defined relative to the emitter, not the other way around, and that ordering is not arbitrary. The emitter's job is to inject carriers into the germanium; the collector's job is to gather what survives the trip. There is no way to define a useful collector position before an emitter exists to measure the distance from, which is why Step 13 seated one point first and Step 14 places the second one near it rather than placing both simultaneously or placing the collector first. This ordering mirrors the device's own carrier-flow logic rather than being a convenience of assembly sequence — the geometry of this step follows the same asymmetry between injection and collection that Step 1 established when it chose which carrier species the device would depend on.

StepProcess operationInputOutputSpecificationConstraint
14.1Confirm the emitter's seated position and tension remain stable before beginning collector placementSeated emitter assembly from Step 13Confirmed-stable emitterNo detected drift in emitter position or tension since its own Step 13 seatingBeginning collector placement against an already-unstable emitter compounds one unresolved problem with another
14.2Bring the collector point assembly into the vicinity of the emitter at minimal mechanical disturbanceConfirmed-stable emitter from 13.1, verified point-and-spring assembly for the collectorCollector positioned near, not yet touching, the emitter's regionNo measurable disturbance to the emitter's position or tension during this approachA heavy-handed approach risks undoing the stability just confirmed in 13.1 before the collector even makes contact
14.3Measure the actual separation between the emitter and the approaching collector before seating the collectorCollector positioned near emitter from 13.2Measured pre-seating separationSeparation measured against the diffusion-length-derived target from Step 1Seating the collector before measuring its position converts a correctable approach into a committed, harder-to-adjust result
14.4Seat the collector point at the verified separation, applying tension per the same bounds Step 13 established for a single pointMeasured separation from 13.3, collector point-and-spring assemblySeated collector, at target separationSeparation within Step 1's diffusion-length-derived tolerance; tension within the bounds Step 13 establishedA collector seated at the right tension but the wrong separation still fails the device's core operating requirement
14.5Re-verify the emitter's position and tension after the collector is fully seatedSeated collector from 13.4, previously confirmed emitter from 13.1Both points verified, jointlyEmitter position and tension unchanged from the state confirmed in 13.1A disturbance missed during the approach in 13.2 can still surface only after the collector is fully seated
14.6Record the final separation and both points' verified states against each point's own provenanceJointly verified assembly from 13.5Documented two-point assemblySeparation, and both points' tension and position, recorded against each point's own record from Step 11.6/11.6Without a joint record, a later device failure cannot be attributed to the emitter, the collector, or the separation between them specifically

Step 14 does not place a second point; it completes a measurement the first twelve steps had been setting up without ever being able to take. Step 1's entire argument rested on a comparison between diffusion length and point spacing, but no step before this one could produce the spacing side of that comparison, because no step before this one had two points on the same face at once. This is the operation where that comparison finally becomes checkable rather than assumed, and it carries a real risk none of the single-point steps before it had to manage: that bringing the second point close enough to measure against the first can itself disturb the stability the first point only just achieved.

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