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Perplexity AI MCP Server for Google ADK 14 tools — connect in under 2 minutes

Built by Vinkius GDPR 14 Tools SDK

Google Agent Development Kit (ADK) is Google's framework for building production AI agents. Add Perplexity AI as an MCP tool provider through Vinkius and your ADK agents can call every tool with full schema introspection.

Vinkius supports streamable HTTP and SSE.

python
from google.adk.agents import Agent
from google.adk.tools.mcp_tool import McpToolset
from google.adk.tools.mcp_tool.mcp_session_manager import (
    StreamableHTTPConnectionParams,
)

# Your Vinkius token. get it at cloud.vinkius.com
mcp_tools = McpToolset(
    connection_params=StreamableHTTPConnectionParams(
        url="https://edge.vinkius.com/[YOUR_TOKEN_HERE]/mcp",
    )
)

agent = Agent(
    model="gemini-2.5-pro",
    name="perplexity_ai_agent",
    instruction=(
        "You help users interact with Perplexity AI "
        "using 14 available tools."
    ),
    tools=[mcp_tools],
)
Perplexity AI
Fully ManagedVinkius Servers
60%Token savings
High SecurityEnterprise-grade
IAMAccess control
EU AI ActCompliant
DLPData protection
V8 IsolateSandboxed
Ed25519Audit chain
<40msKill switch
Stream every event to Splunk, Datadog, or your own webhook in real-time

* Every MCP server runs on Vinkius-managed infrastructure inside AWS - a purpose-built runtime with per-request V8 isolates, Ed25519 signed audit chains, and sub-40ms cold starts optimized for native MCP execution. See our infrastructure

About Perplexity AI MCP Server

Connect your Perplexity AI API key to any AI agent and harness the power of real-time web search with AI-generated answers, citations, and related questions through natural conversation.

Google ADK natively supports Perplexity AI as an MCP tool provider. declare Vinkius Edge URL and the framework handles discovery, validation, and execution automatically. Combine 14 tools with Gemini's long-context reasoning for complex multi-tool workflows, with production-ready session management and evaluation built in.

What you can do

  • Answer Questions — Ask any question and get grounded answers with real-time web search and source citations
  • Deep Research — Perform exhaustive research on complex topics with comprehensive reports and thorough citations
  • Logical Reasoning — Solve complex problems requiring step-by-step analysis and chain-of-thought reasoning
  • Domain-Filtered Search — Restrict search results to specific domains for academic, technical, or trusted-source queries
  • Recency Filtering — Get answers based on recent information only (hour, day, week, month, or year)
  • Multi-Turn Conversations — Maintain context across multiple questions for iterative research sessions
  • Structured Output — Get responses in JSON format following a defined schema for programmatic integration
  • Visual Results — Include relevant images and related questions in search results

The Perplexity AI MCP Server exposes 14 tools through the Vinkius. Connect it to Google ADK in under two minutes — no API keys to rotate, no infrastructure to provision, no vendor lock-in. Your configuration, your data, your control.

How to Connect Perplexity AI to Google ADK via MCP

Follow these steps to integrate the Perplexity AI MCP Server with Google ADK.

01

Install Google ADK

Run pip install google-adk

02

Replace the token

Replace [YOUR_TOKEN_HERE] with your Vinkius token

03

Create the agent

Save the code above and integrate into your ADK workflow

04

Explore tools

The agent will discover 14 tools from Perplexity AI via MCP

Why Use Google ADK with the Perplexity AI MCP Server

Google ADK provides unique advantages when paired with Perplexity AI through the Model Context Protocol.

01

Google ADK natively supports MCP tool servers. declare a tool provider and the framework handles discovery, validation, and execution

02

Built on Gemini models, ADK provides long-context reasoning ideal for complex multi-tool workflows with Perplexity AI

03

Production-ready features like session management, evaluation, and deployment come built-in. not bolted on

04

Seamless integration with Google Cloud services means you can combine Perplexity AI tools with BigQuery, Vertex AI, and Cloud Functions

Perplexity AI + Google ADK Use Cases

Practical scenarios where Google ADK combined with the Perplexity AI MCP Server delivers measurable value.

01

Enterprise data agents: ADK agents query Perplexity AI and cross-reference results with internal databases for comprehensive analysis

02

Multi-modal workflows: combine Perplexity AI tool responses with Gemini's vision and language capabilities in a single agent

03

Automated compliance checks: schedule ADK agents to query Perplexity AI regularly and flag policy violations or configuration drift

04

Internal tool platforms: build self-service agent platforms where teams connect their own MCP servers including Perplexity AI

Perplexity AI MCP Tools for Google ADK (14)

These 14 tools become available when you connect Perplexity AI to Google ADK via MCP:

01

chat_completion

The Sonar model searches the web, synthesizes information, and provides a concise answer. This is the basic query tool for factual questions, summaries, and general knowledge. Use this for quick lookups where you need accurate, up-to-date information. Ask Perplexity AI a question and get a grounded, cited answer

02

chat_with_citations

Each claim or fact in the response is linked to its original source. This is essential for research, fact-checking, and academic work where sources matter. The response includes a citations array with URLs of all referenced sources. Ask Perplexity AI and get answers with source citations

03

chat_with_domain_filter

Provide domains as a comma-separated list (e.g., "arxiv.org,nih.gov,github.com"). Only sources from the specified domains will be used in generating the answer. Use this for domain-specific research, academic papers, or trusted sources only. Citations are automatically included to verify sources. Ask Perplexity AI restricting search to specific domains

04

chat_with_history

Provide messages as a JSON array of {role: "user"|"assistant"|"system", content: "text"} objects. This enables follow-up questions where the model understands previous context. Use this for complex queries that build on previous answers or require contextual understanding. Example: [{ "role": "user", "content": "What is quantum computing?" }, { "role": "assistant", "content": "Quantum computing uses quantum bits..." }, { "role": "user", "content": "How does it differ from classical computing?" }] Ask Perplexity AI with multi-turn conversation history

05

chat_with_images

The response includes an images array with URLs to related images found during the search. Use this for visual topics, product searches, or when you need images to accompany the answer. Ask Perplexity AI and get relevant images with the answer

06

chat_with_recency_filter

Available recency filters: "hour", "day", "week", "month", "year". This ensures the answer is based on recent information only. Use this for news, recent events, or time-sensitive queries where outdated info is not useful. Ask Perplexity AI with results filtered by time recency

07

chat_with_related_questions

The response includes a related_questions array with suggested questions for further exploration. Use this for research, learning, and discovering related topics you might want to explore. Ask Perplexity AI and get related follow-up questions

08

deep_research

This model performs extensive web searches and generates detailed reports with thorough citations. It takes longer than regular queries but provides much more depth and breadth. Use this for complex topics, literature reviews, competitive analysis, or thorough investigations. Maximum tokens default to 4096 for comprehensive responses. Perform deep research with exhaustive web search and comprehensive report

09

follow_up

Provide the conversation history as a JSON array of messages and the follow-up question. This maintains context from previous turns in the conversation. Use this for multi-turn research sessions where each question builds on previous answers. Ask a follow-up question in an ongoing conversation with Perplexity AI

10

list_models

Use this to discover what models are available before choosing which one to use for your queries. List all available Perplexity AI models

11

reasoning

This model excels at multi-step reasoning, mathematical problems, code analysis, and chain-of-thought tasks. Use this for problems requiring step-by-step analysis, mathematical proofs, code reviews, or logical deductions. Citations are included where external information is referenced. Ask Perplexity AI for complex logical reasoning and step-by-step analysis

12

search_query

This combines all search features: cited sources, relevant images, and follow-up questions. Use this when you want the fullest possible search result with all supplementary information. The response includes content, citations array, images array, and related_questions array. Perform a comprehensive web search with citations, images, and related questions

13

structured_query

The model will return the answer as JSON matching your schema definition. Provide the JSON schema as a string. This is useful for programmatic data extraction, API integrations, and when you need consistent, parseable responses. Example schema: { "type": "object", "properties": { "name": { "type": "string" }, "age": { "type": "number" } } } Ask Perplexity AI and get a structured JSON response following a schema

14

system_prompt_query

The system prompt defines how the model should respond (e.g., "You are a medical expert...", "Answer in bullet points..."). Use this for specialized queries, role-playing, formatting requirements, or domain-specific expertise. Example system prompt: "You are a senior software architect. Explain concepts with code examples." Ask Perplexity AI with a custom system prompt to set behavior and context

Example Prompts for Perplexity AI in Google ADK

Ready-to-use prompts you can give your Google ADK agent to start working with Perplexity AI immediately.

01

"What are the latest developments in quantum computing as of this week?"

02

"Do deep research on the competitive landscape of electric vehicle manufacturers in Southeast Asia, including market share, pricing strategies, and government incentives."

03

"Search for news about AI regulation in the European Union from the last month, restricted to europa.eu and reuters.com domains."

Troubleshooting Perplexity AI MCP Server with Google ADK

Common issues when connecting Perplexity AI to Google ADK through the Vinkius, and how to resolve them.

01

McpToolset not found

Update: pip install --upgrade google-adk

Perplexity AI + Google ADK FAQ

Common questions about integrating Perplexity AI MCP Server with Google ADK.

01

How does Google ADK connect to MCP servers?

Import the MCP toolset class and pass the server URL. ADK discovers and registers all tools automatically, making them available to your agent's tool-use loop.
02

Can ADK agents use multiple MCP servers?

Yes. Declare multiple MCP tool providers in your agent configuration. ADK merges all tool schemas and the agent can call tools from any server in a single turn.
03

Which Gemini models work best with MCP tools?

Gemini 2.0 Flash and Pro models both support function calling required for MCP tools. Flash is recommended for latency-sensitive use cases, Pro for complex reasoning.

Connect Perplexity AI to Google ADK

Get your token, paste the configuration, and start using 14 tools in under 2 minutes. No API key management needed.