82

How can I disable a <Link> in react-router, if its URL already active? E.g. if my URL wouldn't change on a click on <Link> I want to prevent clicking at all or render a <span> instead of a <Link>.

The only solution which comes to my mind is using activeClassName (or activeStyle) and setting pointer-events: none;, but I'd rather like to use a solution which works in IE9 and IE10.

2
  • stackoverflow.com/a/10276157/1642219 Commented Mar 12, 2016 at 22:10
  • @UDB Rendering a <span> instead of <a> is totally fine. This question was specific to react-router - not a general question. But thank you.
    – Pipo
    Commented Mar 13, 2016 at 19:08

12 Answers 12

80

You can use CSS's pointer-events attribute. This will work with most of the browsers. For example your JS code:

class Foo extends React.Component {
  render() {
    return (
      <Link to='/bar' className='disabled-link'>Bar</Link>
    );
  }
}

and CSS:

.disabled-link {
  pointer-events: none;
}

Links:

The How to disable HTML links answer attached suggested using both disabled and pointer-events: none for maximum browser-support.

a[disabled] {
    pointer-events: none;
}

Link to source: How to disable Link

2
  • 13
    It's important to note that the pointer-events technique will only disable clicks from a pointer device. It's still possible to select and activate the link with keyboard.
    – matharden
    Commented Oct 8, 2021 at 12:23
  • This approach is not safe. A user can trespass the disabled linked using dev tools.
    – Si Thu
    Commented Nov 5, 2022 at 9:52
55

This works for me:

<Link to={isActive ? '/link-to-route' : '#'} />
4
  • 1
    Where's isActive coming from? Commented Jun 23, 2020 at 19:04
  • It's coming from props/state. Commented Jun 30, 2020 at 18:01
  • 18
    It will move to the top of the page. href="#" is really annoying to users.
    – Kevin Beal
    Commented Mar 3, 2022 at 16:05
  • 2
    This doesn't disable the Link component, the user can still click on the active link this way. Commented Apr 4, 2022 at 20:45
36

I'm not going to ask why you would want this behavior, but I guess you can wrap <Link /> in your own custom link component.

<MyLink to="/foo/bar" linktext="Maybe a link maybe a span" route={this.props.route} />

class MyLink extends Component {
    render () {
        if(this.props.route === this.props.to){
            return <span>{this.props.linktext}</span>
        }
        return <Link to={this.props.to}>{this.props.linktext}</Link>
    }
}

(ES6, but you probably get the general idea...)

5
  • 5
    I can see why that would be useful. If the <span> tag is replaced with a <b> or a <strong> tag, then the link would turn into a bold item in a list of breadcrumbs when the link is clicked on. Clicking on another breadcrumb link would renable the <Link> tag for the previous click & apply the bold + disabled link state to the newly clicked link.
    – Clomp
    Commented Jun 6, 2016 at 19:01
  • With react-router v4, you need to use this.props.history.location.pathname instead of this.props.route
    – nbeuchat
    Commented Jan 28, 2018 at 2:19
  • 3
    I also suggest to use {this.props.children} instead of adding a new props linktext. This way, you can really use this component as a normal Link component.
    – nbeuchat
    Commented Jan 28, 2018 at 2:21
  • 1
    This solution is not accessible. You should pass aria-disabled="true" and either remove the to (though Link requires you to pass it) or use preventDefault.
    – SRachamim
    Commented Jul 20, 2020 at 8:39
  • Better use matchPath function from react-router library to check if the route is active. The aforementioned solution is not going to work in all cases, so don't rely on === comparison.
    – Umbrella
    Commented Jan 1, 2022 at 15:46
10

Another possibility is to disable the click event if clicking already on the same path. Here is a solution that works with react-router v4.

import React, { Component } from 'react';
import { Link, withRouter } from 'react-router-dom';

class SafeLink extends Component {
    onClick(event){
        if(this.props.to === this.props.history.location.pathname){
            event.preventDefault();
        }

        // Ensure that if we passed another onClick method as props, it will be called too
        if(this.props.onClick){
            this.props.onClick();
        }
    }

    render() {
        const { children, onClick, ...other } = this.props;
        return <Link onClick={this.onClick.bind(this)} {...other}>{children}</Link>
    }
}

export default withRouter(SafeLink);

You can then use your link as (any extra props from Link would work):

<SafeLink className="some_class" to="/some_route">Link text</SafeLink>
2

All the goodness of React Router NavLink with the disable ability.

import React from "react"; // v16.3.2
import { withRouter, NavLink } from "react-router-dom"; // v4.2.2

export const Link = withRouter(function Link(props) {
  const { children, history, to, staticContext, ...rest } = props;
  return <>
    {history.location.pathname === to ?
      <span>{children}</span>
      :
      <NavLink {...{to, ...rest}}>{children}</NavLink>
    }
  </>
});
3
  • props has no property to and no string index signature. Commented Jun 13, 2018 at 12:39
  • I'm not sure if I understand your remark but notice that const Link... is an HOC. Also props are the merge of withRouter given props and the usual Link props. to belongs to the props of the wrapped Link. PS: NavLink is a special version of Link and as such carries a to prop too. reacttraining.com/react-router/web/api/NavLink
    – fsenart
    Commented Jun 13, 2018 at 13:15
  • 1
    Ah sorry, the "typed" solution being out of scope, I prefer giving a more on purpose solution. But feel free to provide a typed version with your dialect of choice.
    – fsenart
    Commented Jun 13, 2018 at 13:27
2

Create a slim custom component like this below, you can also apply styling & css if you want as well maybe play with the opacity and pointer events none etc... or you can set the "to" to null when disabled from props

type Props = { disabled?: boolean;} & LinkProps; 

const CustomLinkReactRouter = (props: Props) => {
    const { disabled, ...standardProps } = props;
    return <Link {...standardProps} onClick={e => disabled && e.preventDefault()}/> 
}
export default CustomLinkReactRouter;
1

React Router's Route component has three different ways to render content based on the current route. While component is most typically used to show a component only during a match, the children component takes in a ({match}) => {return <stuff/>} callback that can render things cased on match even when the routes don't match.

I've created a NavLink class that replaces a Link with a span and adds a class when its to route is active.

class NavLink extends Component {
  render() {
    var { className, activeClassName, to, exact, ...rest } = this.props;
    return(
      <Route
        path={to}
        exact={exact}
        children={({ match }) => {
          if (match) {
            return <span className={className + " " + activeClassName}>{this.props.children}</span>;
          } else {
            return <Link className={className} to={to} {...rest}/>;
          }
        }}
      />
    );
  }
}

Then create a navlink like so

<NavLink to="/dashboard" className="navlink" activeClassName="active">

React Router's NavLink does something similar, but that still allows the user to click into the link and push history.

1

Based on nbeuchat's answer and component - I've created an own improved version of component that overrides react router's Link component for my project.

In my case I had to allow passing an object to to prop (as native react-router-dom link does), also I've added a checking of search query and hash along with the pathname

import PropTypes from 'prop-types';
import React, { Component } from 'react';
import { Link as ReactLink } from 'react-router-dom';
import { withRouter } from "react-router";

const propTypes = {
  to: PropTypes.oneOfType([PropTypes.string, PropTypes.func, PropTypes.object]),
  location: PropTypes.object,
  children: PropTypes.node,
  onClick: PropTypes.func,
  disabled: PropTypes.bool,
  staticContext: PropTypes.object
};

class Link extends Component {
  handleClick = (event) => {
    if (this.props.disabled) {
      event.preventDefault();
    }

    if (typeof this.props.to === 'object') {
      let {
        pathname,
        search = '',
        hash = ''
      } = this.props.to;
      let { location } = this.props;

      // Prepend with ? to match props.location.search
      if (search[0] !== '?') {
        search = '?' + search;
      }

      if (
        pathname === location.pathname
        && search === location.search
        && hash === location.hash
      ) {
        event.preventDefault();
      }
    } else {
      let { to, location } = this.props;

      if (to === location.pathname + location.search + location.hash) {
        event.preventDefault();
      }
    }

    // Ensure that if we passed another onClick method as props, it will be called too
    if (this.props.onClick) {
      this.props.onClick(event);
    }
  };

  render() {
    let { onClick, children, staticContext, ...restProps } = this.props;
    return (
      <ReactLink
        onClick={ this.handleClick }
        { ...restProps }
      >
        { children }
      </ReactLink>
    );
  }
}

Link.propTypes = propTypes;

export default withRouter(Link);
0

Another option to solve this problem would be to use a ConditionalWrapper component which renders the <Link> tag based on a condition.

This is the ConditionalWrapper component which I used based on this blog here https://blog.hackages.io/conditionally-wrap-an-element-in-react-a8b9a47fab2:

const ConditionalWrapper = ({ condition, wrapper, children }) =>
    condition ? wrapper(children) : children;

export default ConditionalWrapper

This is how we have used it:

const SearchButton = () => {
    const {
        searchData,
    } = useContext(SearchContext)

    const isValid = () => searchData?.search.length > 2

    return (<ConditionalWrapper condition={isValid()}
                                wrapper={children => <Link href={buildUrl(searchData)}>{children}</Link>}>
            <a
                className={`ml-auto bg-${isValid()
                    ? 'primary'
                    : 'secondary'} text-white font-filosofia italic text-lg md:text-2xl px-4 md:px-8 pb-1.5`}>{t(
                    'search')}</a>
        </ConditionalWrapper>
    )
}

This solution does not render the Link element and avoids also code duplication.

0
const [isActive, setIsActive] = useState(true); 


<Link to={isActive ? '/link-to-route' :  null} />

you can try this, this worked for me.

2
  • Please add some supporting context.
    – Thoth
    Commented Aug 20, 2022 at 15:15
  • 3
    This created an warning for me: ``` Warning: Failed prop type: The prop to is marked as required in Link, but its value is null. ```
    – Sean
    Commented Dec 23, 2022 at 22:35
0
<Link to={isActive ? '/link-to-route' : ''} />

This works for me

-9

If it fits your design, put a div on top of it, and manipulate the z-index.

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