docs: add bio optical witness living light equations

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Allaun Silverfox 2026-05-09 20:53:51 -05:00
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# Bio-Optical Witness: Living-Light Material Equations
Status: `DRAFT_RECEIPT_PROTOCOL`
Claim boundary: this file extracts quantitative relations and stack-level equations from the public CU Boulder / Science Advances report on chemically sustained bioluminescence in living-light materials. It is not a wet-lab protocol, culture protocol, or claim that biological light is free energy. It treats living bioluminescent material as a slow optical witness surface: chemical/material state in, optical receipt out.
Primary source spine:
- CU Boulder Today, "Light without electricity? Glowing algae could make it possible" (2026-05-06).
- EurekAlert release for the peer-reviewed Science Advances article, DOI `10.1126/sciadv.aee3907`.
- Preprint/public abstract record for "Chemical Stimulation Sustains Bioluminescence of Living Light Materials", DOI `10.1101/2025.07.16.664986`.
- IUPAC Gold Book definition of pH.
## Extracted Source Facts
```text
organism: Pyrocystis lunula
material: 3D-printed ionically crosslinked alginate / naturally derived hydrogel scaffold
trigger_acidic: pH = 4
trigger_basic: pH = 10
acidic_response: bright, localized, persistent emission up to 25 minutes
basic_response: diffuse, shorter-lived / biphasic stress-like emission
longitudinal_retention: ~75% brightness after 4 weeks under acidic triggering
application frame: living sensors, soft robotics, dark-environment autonomous systems, environmental monitoring
```
## 1. pH Gate
Use the IUPAC activity definition as the canonical chemical input gate:
```text
pH = -log10(a_H+)
```
where `a_H+` is hydrogen-ion activity.
For dilute/engineering approximations:
```text
[H+] ≈ 10^(-pH)
```
The reported acidic and basic triggers become:
```text
[H+]_acid ≈ 10^-4
[H+]_base ≈ 10^-10
[H+]_acid / [H+]_base ≈ 10^6
```
Receipt interpretation:
```text
pH 4 and pH 10 are not symmetric perturbations.
They differ by approximately six orders of magnitude in hydrogen-ion activity.
```
## 2. Chemical-Light Response Gate
Define a categorical pH response gate for living-light material:
```text
G_pH(pH) =
ACID_EMIT if pH ≈ 4
BASE_STRESS if pH ≈ 10
HOLD_UNKNOWN otherwise
```
Stack interpretation:
```text
ACID_EMIT -> ADMIT optical witness, localized persistent glow
BASE_STRESS -> HOLD/FAMM, diffuse or stress-like glow signature
HOLD_UNKNOWN -> require calibration receipt before classification
```
## 3. Bio-Optical Witness Signal
Let:
```text
L(x, t) = emitted optical intensity at surface coordinate x and time t
C(x, t) = chemical trigger field, e.g. pH/stimulus concentration
M(x, t) = material viability / living-cell reactivity field
S(x, t) = mechanical stimulation field
```
Then a stack-level witness equation is:
```text
L(x,t) = M(x,t) · B( C(x,t), S(x,t), t ) + ε_opt(x,t)
```
where:
```text
B = bioluminescent response kernel
ε_opt = optical noise / camera / scattering residual
```
For the chemistry-only gate:
```text
L_chem(x,t) = M(x,t) · B_pH(pH(x,t), t) + ε_opt(x,t)
```
## 4. Persistence Window
The acidic response is reported as persistent up to 25 minutes. Treat this as a bounded emission horizon:
```text
T_acid ≤ 25 min
```
A minimal decay model for local optical witness intensity:
```text
L_acid(t) = L0 · exp(-t / τ_acid) · 1[0 ≤ t ≤ T_acid]
```
with receipt constraint:
```text
T_acid_observed ≤ 25 min
```
Do not assign `τ_acid` from the article alone; it must be fitted from time-series intensity data.
## 5. Longitudinal Brightness Retention
The public report states that acid-triggered 3D-printed living-light structures retained about 75% brightness after four weeks.
```text
R_B(4 weeks) = L_week4 / L_initial ≈ 0.75
```
A conservative viability/brightness decay model:
```text
R_B(t) = exp(-k_B t)
```
Solving from the reported four-week retention:
```text
k_B ≈ -ln(0.75) / 4 weeks
k_B ≈ 0.0719 week^-1
```
Half-brightness extrapolation under the same simple model:
```text
t_1/2 = ln(2) / k_B ≈ 9.64 weeks
```
Claim boundary: this half-life is a model extrapolation, not a source claim.
## 6. Integrated Optical Receipt
For camera-readable witness telemetry, the useful value is often total emitted light over a bounded read window:
```text
I_emit(x; T) = ∫_0^T L(x,t) dt
```
For a full witness tile region `Ω_tile`:
```text
I_tile(T) = ∫_{Ω_tile} ∫_0^T L(x,t) dt dx
```
For digital receipt extraction:
```text
packet = DecodeCamera( L_frame(x,t), calibration, threshold )
```
## 7. Synergy Gate: Chemical + Mechanical Stimulation
The public abstract reports that coupling chemical and mechanical stimulation yields synergistic enhancement of amplitude and duration.
Define:
```text
L_chem = response to chemical stimulus alone
L_mech = response to mechanical stimulus alone
L_combo = response to combined chemical + mechanical stimulus
```
Synergy witness:
```text
Σ_syn = L_combo - (L_chem + L_mech)
```
or for integrated light:
```text
Σ_syn(T) = I_combo(T) - [ I_chem(T) + I_mech(T) ]
```
Classification:
```text
Σ_syn > 0 -> synergistic enhancement
Σ_syn = 0 -> additive response
Σ_syn < 0 -> antagonistic / stress / inhibition response
```
Do not assign numeric synergy without source time-series or amplitude data.
## 8. Living-Light Receipt Surface
Canonical receipt transform:
```text
chemical/material event
-> living-light emission
-> camera observation
-> optical packet
-> Sniffer classification
-> BVMR gate
-> CMR receipt
-> FAMM if abnormal / scarred
-> Underverse if excluded, failed, unpaid, or residual
-> Warden replay check
```
Minimum event vector:
```json
{
"protocol": "bio_optical_witness_tile_v0",
"source": "chemical_stimulation_sustains_bioluminescence_living_light_materials",
"organism": "Pyrocystis_lunula",
"substrate": "3D_printed_alginate_hydrogel",
"stimulus": {
"pH": "assigned_or_measured",
"mechanical_stimulation": "present_or_absent"
},
"observed": {
"emission_pattern": "localized | diffuse | biphasic | none",
"emission_duration": "measured_seconds",
"integrated_intensity": "I_tile(T)",
"brightness_retention": "optional_longitudinal_R_B"
},
"decision": "ADMIT | HOLD | FAMM | QUARANTINE",
"claim_boundary": "slow_living_sensor_not_general_lighting"
}
```
## 9. No-Free-Light Accounting
Biological light is not free energy. The electrical bill may be reduced at the emitting surface, but the payment moves into metabolic, photosynthetic, chemical, material-maintenance, and readout costs.
```text
E_total = E_photo_input + E_metabolic + E_chemical_trigger + E_material_maintenance + E_camera_readout + E_decode
```
For stack accounting:
```text
optical_output <= paid_biochemical_energy + stored_material_state - losses
```
Receipt rule:
```text
No emitted-light claim without energy/payment lane.
No optical packet without calibration/residual lane.
No living material claim without viability/retention lane.
```
## 10. Stack Integration
Name:
```text
Bio-Optical Witness Material
Living-Light Receipt Surface
```
Keeper phrase:
```text
This is not free light; it is biology paying the optical bill.
Chemical state enters, living material emits, camera reads, receipts classify.
```
Connection to existing semiautonomous stack:
```text
Bio-optical tile = slow optical witness surface
Equation Sniffers = classify optical/chemical scent trail
BVMR = gate event vector
AVMR = combine surviving witness vectors
CMR = receipt combined optical event
FAMM = inspect abnormal scars
Underverse = account excluded or failed material/light response
Warden = replay/calibration check
```