Booking / scheduling on Nuxt 4, Postgres (Neon) and Supabase Auth
Calendar-scoped booking: bookable resources with capacity, time-windowed availability slots, party-size reservations, and per-reservation payment settlement.
79 files, 4 tables and 158 lines of schema, verified 2026-08-23 on Nuxt 4, Postgres (Neon) and Supabase Auth.
15 pinned upstream versions
request path. session validation runs in server components and route handlers, not at the edge
What you're getting
Nuxt 4 (framework mode): full-stack Vue SSR: client under app/ (Vite), server under server/ (Nitro), API as server/api/*.post.ts Nitro route handlers.
Postgres on Neon via Drizzle ORM and the postgres-js driver.
Supabase Auth: hosted identity (GoTrue) via the @supabase/ssr cookie client; email+password + OAuth.
Calendar-scoped booking: bookable resources with capacity, time-windowed availability slots, party-size reservations, and per-reservation payment settlement.
Setup
bun add nuxt vue drizzle-orm postgres @supabase/ssr @supabase/supabase-jsDATABASE_URLNeon pooled (-pooler) connection stringNEXT_PUBLIC_SUPABASE_URLNext: your Supabase project URL (RR: VITE_SUPABASE_URL · Nuxt: NUXT_PUBLIC_SUPABASE_URL)NEXT_PUBLIC_SUPABASE_ANON_KEYNext: the project's anon/public key (RR: VITE_SUPABASE_ANON_KEY · Nuxt: NUXT_PUBLIC_SUPABASE_ANON_KEY)SUPABASE_URLReact Router server-side (loaders): same project URL, read off process.env — never inlined into the client bundleSUPABASE_ANON_KEYReact Router server-side: same anon keyApply the schema with bunx drizzle-kit push
Initialization
Database client
Booking & scheduling schema: resources, availability & reservations
4 tables, 22 columns and 8 indexes and constraints, applied to a live Postgres (Neon) and asserted to materialize.
resources5 columns · 2 indexedavailability_slots5 columns · 2 indexedreservations6 columns · 2 indexedbooking_payments6 columns · 2 indexedWhat this schema is built to answer
availability_slots, resolved by idx_slot_resource_time on (resource_id, starts_at): the resource equality and the date range are one index scan, and rows arrive in start order with no sort step.
resources through idx_resource_owner on owner_id gives the owner's inventory in a single lookup; each slot reaches back through the resource_id foreign key, and slots cascade with the resource on delete.
reservations, via idx_reservation_user on booked_by — the only index into reservations — with each hit joining to its availability_slots row by primary key for the window times.
booking_payments, via idx_payment_reservation on reservation_id, returning every attempt against a reservation. amount_cents is integer cents and status is pinned to pending, paid or refunded by booking_payments_status_check, so summing the captured rows is exact.
availability_slots.is_open is a boolean defaulting to true, so withdrawing a window is an UPDATE. Deleting the row instead fires the cascade chain slot to reservations to booking_payments.
Resources & ownershipbookable things (rooms, seats, staff) owned by a Better Auth user, each carrying an integer capacity cap
Availability slots & calendar windowstime windows a resource publishes, indexed by (resourceId, startsAt) for calendar range queries
Reservations & party sizeholds and confirmations against a slot, consuming partySize units and walking held → confirmed → cancelled via CHECK
Booking payments & settlementone payment record per reservation, storing amountCents as integer and an opaque providerPaymentId for Stripe/etc.
Deploy targets
The app UI
Decisions and compatibility
Client/server split: the DB client, Drizzle schema, records, and webhooks are server-side (server/). The `@/` alias is the client root (app/); server code reaches shared modules via Nuxt's `~~` rootDir alias (e.g. `~~/server/db/schema`).
The API layer is Nitro, Nuxt's server engine: endpoints are server/api/*.post.ts route handlers, and auth mounts as a Nitro catch-all that delegates to the auth library's framework-agnostic web handler.
Nuxt auto-imports components and composables at runtime, but the emitted server code imports h3 helpers (defineEventHandler, toWebRequest) EXPLICITLY — the one deliberate idiom trade so the handlers type-check under standalone tsc instead of relying on the auto-import magic.
Session gating runs in a Nitro server middleware (server/middleware/), which fires on every SSR and API request — the true security boundary, and a real server-side session check rather than a cookie-existence peek.
prepare: false is mandatory — Neon's pooled endpoint is PgBouncer in transaction mode, where server-side prepared statements break across the pool.
Drizzle is paired here (not Prisma): Prisma's prepared-statement reliance is incompatible with transaction-mode pooling.
Hosted: Supabase owns identity in its managed auth.users. This stack emits a LOCAL `user` mirror (db/auth-schema.ts) so app-type schemas can foreign-key `user` directly — keep it in sync with a Supabase trigger on auth.users (insert/update → public.user). The drizzle migration only owns the mirror table's shape, not the trigger.
Sessions are cookie-based (@supabase/ssr): the proxy refreshes them on every request; Server Components read the user via supabase.auth.getUser().
Capacity is on the resource, not the slot: a reservation consumes partySize units of the slot's capacity, so multiple parties can share one slot up to its cap.
availabilitySlots carries an isOpen boolean so an owner can close a window without deleting it (and its child reservations); the cascade is intentionally one-way downward (slot → reservation → payment).
How this stack fits together
On Nuxt 4 this stack puts its Postgres (Neon) client at server/lib/db.ts and the Supabase Auth instance at app/middleware/auth.ts and session checks in server/middleware/supabase.ts. Those are the paths this framework's adapter actually emits, not a shared convention: the same Booking / scheduling schema and the same Supabase Auth wiring land somewhere different on each of the other frameworks in the registry.
Supabase Auth owns its identity tables in the same database as resources, availability_slots, reservations and booking_payments, so the foreign keys reference the local user row directly and a delete cascades through them. No mirror, no webhook, and no window where the two stores disagree.
Postgres (Neon) stores those surrogate keys as uuid, so every foreign key across the 4 tables and 22 columns below is a uuid column. The migration was applied to a live Postgres (Neon) and the tables asserted, not just type-checked.
Booking / scheduling
Each level of this schema narrows time. A resources row is the thing being booked, an availability_slots row is a window that resource publishes, a reservations row is a claim on that window, and a booking_payments row settles the claim. Ownership stops at the top: resources.owner_id references Better Auth's user.id, while the guest appears three tables down as reservations.booked_by, so publisher and booker are two different columns aimed at the same identity table and no role column separates them. Capacity lives on the resource, not on the slot. resources.capacity is an integer defaulting to 1, and every reservation consumes party_size units of it, so a table for six is one resource with capacity 6 carrying several overlapping reservations, while a barber's chair is capacity 1 and effectively exclusive.
Nothing in SQL enforces that arithmetic: there is no exclusion constraint, no unique on slot_id, and no trigger summing party_size. Overbooking is the one invariant the migration hands you unguarded, and it belongs inside a transaction in your own code. availability_slots is similarly permissive — starts_at and ends_at are plain notNull timestamps with no CHECK that the window runs forwards. The indexes are shaped for the three screens this schema exists to draw. idx_slot_resource_time on (resource_id, starts_at) is the calendar: equality on the resource plus a range on the start time resolves in one index, already in chronological order. idx_reservation_user on booked_by is the guest's own list of bookings.
idx_payment_reservation on reservation_id gathers every settlement attempt against a booking, and amount_cents is an integer so summing captured money is exact rather than approximate. Both lifecycle columns are text under named CHECKs — reservations_status_check for held, confirmed and cancelled, booking_payments_status_check for pending, paid and refunded. Deletes cascade one way only, downward, which is why is_open exists on a slot: an owner withdrawing a window flips a boolean and the reservations beneath it survive, whereas deleting the slot would take those reservations and their payment rows with it. The read left uncovered is availability itself — counting party_size against a slot has no index on reservations.slot_id behind it.
Nuxt 4
Nuxt 4 in framework mode is the one stack here with two roots. Client code lives under app/ and is what `@/` points at (Vite, Vue single-file components); server code lives under server/ and is run by Nitro, Nuxt's server engine. The database layer is server-side, so initCode writes server/lib/db.ts and the schema, record modules and webhooks land under server/db/ and server/api/ — server modules reach each other through Nuxt's `~~` rootDir alias (`~~/server/lib/db`, `~~/server/db/schema`), never through `@/`. That split earns its keep with secrets: the Resend send client belongs to ~~/server/lib/email, and nothing under app/ can import it by accident. The API layer is Nitro rather than a React-shaped route file.
server/api/webhooks/polar.post.ts is a POST endpoint; auth mounts as the catch-all server/api/auth/[...all].ts, which adapts the H3 event with toWebRequest(event) and hands the resulting web Request to the auth library's framework-agnostic handler. Nuxt auto-imports defineEventHandler and its siblings at runtime, but the emitted server files import them from h3 explicitly — one deliberate idiom trade so every handler type-checks under standalone tsc. Session gating is a Nitro server middleware at server/middleware/auth.ts. It fires on every SSR render and every API request, filters on pathname prefixes (/dashboard, /settings), performs the real auth.api.getSession() lookup, and answers with sendRedirect(event, "/sign-in", 302). Because Nitro sits in front of both the rendered page and the endpoints, that is a genuine security boundary rather than a cheap pre-render bounce.
On the client, Vue does its own thing: the auth binding exposes signIn/signUp/useSession as Vue refs, screens are .vue components under app/pages/ (sign-in.vue, dashboard/[id].vue), chrome lives in app/components/ and app/layouts/, and SPA-side guards are app/middleware/*.ts. The design system is shadcn-vue on reka-ui — a real re-port, not the React components wearing new names — and it is checked with vue-tsc, since plain tsc cannot parse an SFC.
Postgres (Neon)
Postgres here is Neon reached through postgres-js, with Drizzle's pg-core dialect on top: drizzle({ client }) over a single module-level postgres(DATABASE_URL, { prepare: false }). That flag is not a preference. Neon's pooled (-pooler) endpoint is PgBouncer in transaction mode, where a backend is handed to a different session between statements, so server-side prepared statements break across the pool — and the same constraint is why this axis pairs with Drizzle rather than Prisma. One client per module is enough: PgBouncer and the runtime do the pooling, so there is no globalThis singleton dance. The schemas built on this dialect make three recurring type decisions. Primary keys are uuid(...).primaryKey().defaultRandom(), so ids come from the database. Timestamps are timestamp(..., { withTimezone: true }).defaultNow() — timestamptz, an absolute instant.
Closed value sets are text plus a CHECK constraint rather than pgEnum, so shipping a new role or subscription status is an ordinary constraint change instead of an ALTER TYPE migration. Counters are bigint({ mode: "number" }), and Better Auth's text user.id is referenced as text by the app tables rather than recast. Operationally, transaction-mode pooling forbids anything that spans statements on one backend: LISTEN/NOTIFY, session-scoped SET, advisory-lock sessions, WITH HOLD cursors. Those paths use Neon's direct endpoint instead. The connection client also changes with the deploy target — max: 1 per short-lived serverless instance, a real reused pool (max 10, idle_timeout 20) in a long-running Node process, and on Cloudflare Workers postgres-js is replaced outright by @neondatabase/serverless over HTTP, because Workers have no TCP sockets.
The capability that exists only on this side of the matrix is row-level security. Multi-tenant schemas ship ENABLE plus FORCE ROW LEVEL SECURITY with policies keyed on current_setting('app.current_org_id', true), which withTenant() sets per transaction — unset context yields no rows, so isolation fails closed inside the database rather than in application code. It requires a dedicated NOBYPASSRLS role: Neon's default neondb_owner carries BYPASSRLS, and connecting as it makes every policy silently inert.
Supabase Auth
Supabase Auth is a hosted service — GoTrue — that your app reaches over cookies rather than an SDK session object. Credentials and the canonical user records live in Supabase's managed auth.users schema. What lands in your own database is a mirror: db/auth-schema.ts declares user keyed by the Supabase auth uid (text; varchar(255) on MySQL) with email, full name, avatar URL and timestamps, so app-type schemas can foreign-key user exactly as they would under a self-hosted auth. Unlike the Clerk fragment, no sync webhook is emitted here, because Supabase's own trigger mechanism is the intended path: a trigger on auth.users writing into public.user lives in the Supabase project, not in the drizzle migration.
The migration owns the mirror's column shape and nothing else, so wiring that trigger is a step you take before those foreign keys mean anything. The mechanic that actually shapes this adapter is cookie refresh. @supabase/ssr rotates the auth token, and a rotated cookie only reaches the browser if something writes it onto the outgoing response — which is why every framework branch is built around the same getAll/setAll pair, wired to whatever that framework calls a cookie jar. Next's src/proxy.ts rebuilds the NextResponse inside setAll before calling getUser().
React Router has no middleware layer, so app/lib/supabase/server.ts constructs the client per request and returns { supabase, headers }, and the protected layout route attaches those headers to both exits — the redirect and the pass-through — so a refresh that happened during a guard is not lost. Nuxt's server/utils/supabase.ts binds the client to the h3 event and writes through setCookie, with a Nitro middleware doing the guard. Every decision point calls supabase.auth.getUser(), never getSession(): getSession reads whatever the cookie claims, getUser revalidates it against Supabase. Because a browser client is emitted alongside the server one, the auth screens are real forms calling supabase.auth.signInWithPassword rather than a hosted widget, and the sidebar's user menu subscribes to onAuthStateChange. Two consequences to plan around.
The anon key is public by design and is inlined into the client bundle under whichever prefix the framework demands (NEXT_PUBLIC_, VITE_, NUXT_PUBLIC_), so protection has to come from row-level security on Supabase's side, not from keeping the key quiet. And every guard is a network call to Supabase, not a local query — cheap, but not free, and on the path of every protected request.
